Clinician Reference · Neonatal & Pediatric Nephrology

Neonatal Acute Kidney Injury: Recognition, Diagnosis, Prevention & Follow-up

A developmental, risk-first approach to the newborn kidney — from maternal creatinine and neonatal modified KDIGO staging to nephrotoxin stewardship and life-course kidney surveillance.

PublishedNailathalaGipatikPepalwal: ReferencesMga SanggunianMga TinubdanReng Reperensya: 23 Audience: Neonatologists, pediatric nephrologists, NICU pharmacists, intensivists, trainees Scope: Inpatient recognition & staging + transition-to-follow-up Register: Clinicians only — no patient-directed dosing or self-care Read timeOras ng pagbasaOras sa pagbasaOras ning pamamasa:
Calm 3D illustration of a pair of newborn kidneys beside a soft, descending creatinine-trajectory ribbon and a small forming glomerulus.

Neonatal acute kidney injury (AKI) is common, clinically silent, prognostically important, and frequently recognized late — because the criteria we have measure kidney dysfunction rather than the earliest injury. This guide takes a deliberate stance: interpret the newborn's creatinine as a developmental trajectory rather than a static adult-style filtration value, let risk trigger surveillance before the number rises, and make sure that kidney risk identified in the NICU (neonatal intensive care unit) is not lost at discharge. It is a clinician reference and decision aid, not a universal treatment protocol — neonatal AKI is heterogeneous, and most management decisions require real-time assessment of gestation, postnatal age, perfusion, congenital disease, fluid status, drug exposure, and access to pediatric nephrology.

High-acuity escalation — do not wait for a creatinine threshold

Severe or progressive oliguria/anuria, refractory hyperkalemia or metabolic acidosis, symptomatic fluid overload, uremic complications, a rapidly rising creatinine, suspected obstruction or renal vascular disease (arterial or venous thrombosis), or an inability to deliver nutrition and medications because of fluid constraints all warrant urgent senior neonatal and pediatric nephrology assessment. Kidney replacement therapy (KRT) is a syndrome- and trajectory-based decision; it should not be delayed until an isolated creatinine value is crossed.

The 60-Second View

What to Hold in Mind at the Bedside

A newborn's creatinine must be read as a curve, not a point. In the first days of life it partly reflects the mother's concentration through placental equilibration; its expected fall varies with gestational age; low muscle mass blunts its sensitivity; and a positive fluid balance can dilute it. Apply neonatal modified KDIGO (Kidney Disease: Improving Global Outcomes) using the lowest previous creatinine and the urine-output criteria — but check data quality and clinical context before you trust the stage.

When AKI is suspected, search in parallel for the mechanisms that produce it: low perfusion, fluid accumulation, sepsis or inflammation, obstruction or vascular disease, congenital kidney and urinary-tract disease, and nephrotoxin exposure. Management is supportive and cause-directed. Resist the two reflexes that do the most harm in the newborn — the automatic fluid bolus given without a phenotype that predicts fluid responsiveness, and the automatic diuretic given as if it treated the injury rather than the symptom. Finally, document the AKI episode and build the kidney-health follow-up plan before discharge, because the risk outlives the hospitalization.

Consensus / guideline Moderate clinical evidence Emerging evidence Practice principle

Throughout this guide, statements carry an evidence label and a calibrated verb — Recommend (guideline/consensus or established standard), Consider (reasonable in a defined context; evidence incomplete), Do not routinely use (insufficient evidence or potential harm), and Investigational (research-only or locally validated). Effect estimates are given with their population and, where they drive a conclusion, their confidence interval. Association is not restated as causation.

Physiology

Why the Neonatal Kidney Is Different

Start with the endowment. Nephrogenesis — the formation of new nephrons — begins early in gestation and, in a normally grown fetus, continues to roughly 34–36 weeks. There is no meaningful nephron formation after term. A neonate born extremely preterm therefore arrives with an interrupted nephron count: some postnatal nephrogenesis may continue briefly, but it proceeds under extrauterine stress and can be abnormal, and it does not fully recover the trajectory that intrauterine life would have provided. Low nephron endowment is best understood as a life-course susceptibility factor — a smaller filtration reserve to draw down over decades — and not as a synonym for current chronic kidney disease (CKD).

Now the postnatal transition. At birth, renal blood flow and glomerular filtration rate (GFR) are low; both climb steeply over the first weeks as renal vascular resistance falls and cardiac output redistributes toward the kidney. Tubular function is immature in parallel: concentrating ability, sodium handling, bicarbonate reclamation, and pressure-flow autoregulation are all still maturing. The practical consequence is a kidney with little margin. When hypoxemia, hypotension, systemic inflammation, vasoactive drug exposure, and nephrotoxins act on an organ whose reserve is already small and whose autoregulation is blunted, the same insult that a mature kidney would absorb can push a neonatal kidney into functional failure. This is the physiologic reason risk-based surveillance, rather than reactive creatinine-watching, is the right posture in the highest-acuity infants.

Developmental-origins schematic: a developing kidney with nephrogenesis running to about 34 to 36 weeks and no new nephrons after term; a magnified nephron in the outer cortex and nephrogenic zone with callouts for low renal blood flow and GFR at birth, immature tubular transport and autoregulation, and small filtration reserve; and a bottom flow from interrupted nephrogenesis plus extrauterine stress to reduced nephron endowment to two outcomes — immediate AKI susceptibility in the NICU and lifelong reduced kidney reserve, labelled NOT a diagnosis of CKD.
Developmental origins

The preterm kidney begins life with fewer nephrons and less reserve. Nephron formation runs to roughly 34–36 weeks and stops at term; preterm birth truncates it. Downstream, that yields two distinct risks — an immediately fragile kidney in the NICU and a smaller lifelong filtration reserve, the latter a susceptibility factor, not a diagnosis of CKD.

GFR
Glomerular filtration rate
AKI
Acute kidney injury
NICU
Neonatal intensive care unit
CKD
Chronic kidney disease
Definitions

What Neonatal AKI Is — and What Current Tests Actually Measure

Define AKI as an abrupt disturbance in kidney function with systemic consequences. That definition is deliberately broad, because the useful clinical model separates six things that the word "AKI" tends to blur together. Susceptibility is the immature or reduced renal reserve the infant brought to the bedside. Exposure and stress are the insults acting on it — hypoperfusion, hypoxia, inflammation, toxic exposure, obstruction. Injury is cellular and tissue damage, which may precede any conventional change in filtration. Dysfunction is the measurable change in filtration and/or urine output that our criteria capture. Consequences are the downstream electrolyte, acid-base, volume, nutritional, drug-clearance, and multisystem effects. Reading these as a sequence — susceptibility → exposure → injury → dysfunction → consequences — is what lets you act during the window in which injury has begun but dysfunction has not yet declared itself.

Be precise about what each test in this sequence measures. Serum creatinine and urine output are functional markers: they report filtration and, indirectly, perfusion and tubular handling — late in the causal chain. Urinary neutrophil gelatinase-associated lipocalin (uNGAL) is an injury-associated marker that can rise earlier, when tubular cells are stressed. Cystatin C is predominantly a filtration marker, like creatinine, but read through a different lens because it is far less dependent on muscle mass. None of these is a biopsy, and none names an etiology. A number tells you that filtration has changed or that tubules are stressed; it does not tell you why, and it does not substitute for the parallel search for mechanism described below.

Susceptibilitylow reserve Exposurestress/toxin Injurytubular damage BiomarkeruNGAL rise DysfunctionUrine / GFR ConsequencesCr rise, K⁺ Injury signal can precede measurable dysfunction — timing is not strictly linear Injury before dysfunction
Conceptual — teaching model

Injury (tubular damage) and its early biomarker signal can precede the filtration change that creatinine and urine output eventually record. The dashed arc is the modifiable window — the reason risk-triggered surveillance beats waiting for the creatinine to move.

Epidemiology & Outcomes

How Common, and Why It Matters

Neonatal AKI occurs in roughly one-third of critically ill neonates, but that pooled figure hides enormous variation by gestation, illness, surgery, and — importantly — by the definition applied. The anchor is AWAKEN (the Assessment of Worldwide Acute Kidney Injury Epidemiology in Neonates study), a multicentre, multinational, observational cohort across 24 NICUs, in which 605 of 2,022 neonates (29.9%) developed AKI. After adjustment for potential confounders, AKI was independently associated with higher mortality — adjusted odds ratio 4.6 (95% confidence interval 2.5–8.3) — and with longer hospitalization.3 Read that association carefully: it is robust and it survives adjustment, but a cohort of this design cannot prove that every AKI episode is directly causal of death rather than a marker of sicker physiology. Both readings can be true at once, and the clinical implication — take neonatal AKI seriously as a prognostic signal — does not depend on resolving the causal question.

Moderate clinical evidence
Population / sourceMain findingInterpretation
AWAKEN — 24 centers, 2,022 neonates3AKI 29.9%; adjusted OR for death 4.6 (95% CI 2.5–8.3); longer stayLandmark multicenter cohort; association persists after adjustment — not proof of direct causation
Meena et al. 2024 meta-analysis4Incidence approximately one-third overall; higher mortality with AKIHigh heterogeneity in populations and definitions; pooled estimate should not be exported to any single subgroup
Extremely preterm / very low birth weight (VLBW) cohortsGenerally higher AKI incidence and recurrent injuryDevelopmental vulnerability plus a heavier illness and exposure burden
Cardiac surgery, ECMO (extracorporeal membrane oxygenation), NEC (necrotizing enterocolitis), HIE (hypoxic-ischemic encephalopathy)High, context-specific incidenceEach subgroup carries its own risk; avoid a single pooled number

The outcomes worth discussing extend well beyond mortality: prolonged mechanical ventilation, bronchopulmonary dysplasia, length of stay, recurrent AKI within the admission, and — over the longer term — hypertension and CKD. Here the causal language must stay disciplined. Much of the association between neonatal AKI and later kidney or cardiovascular disease is entangled with prematurity and critical illness themselves, and disentangling the independent contribution of the AKI episode is precisely one of the field's open questions (see Uncertainties). What is actionable now is not a claim about mechanism but a claim about surveillance: infants who had neonatal AKI belong in a kidney-health follow-up pathway.

Interpretation

The Creatinine Problem — Read the Curve, Not One Number

More clinical error in neonatal AKI comes from misreading creatinine than from any other single source. Six features make the newborn value harder to interpret than an adult's, and each has a direct bedside implication.

Maternal signal

At birth, neonatal serum creatinine partly reflects the maternal concentration across an equilibrated placenta. A first value is therefore not a stable neonatal baseline — it is closer to a shared value that must fall as the newborn's own kidneys take over. Staging a ratio off a day-of-life-one creatinine risks anchoring to the mother's physiology, not the baby's.

Expected postnatal decline

In a healthy newborn, creatinine falls over the first days to weeks; the timing and slope of that fall vary with gestational age and illness, and more premature infants tend to reach their nadir later, sometimes after a transient early rise. This variability is exactly why this guide does not present a "normal fall" calculator. Do not routinely use a universal expected-decline curve to declare a value normal or abnormal: a valid tool would require a gestation- and assay-specific reference dataset, and publishing a synthetic curve invites false reassurance in the infants least able to afford it.

Low creatinine generation

Creatinine is generated from muscle. A neonate — particularly a growth-restricted or extremely preterm one — has little muscle mass, so a clinically meaningful fall in GFR may move the creatinine only slightly. The number's insensitivity is the trap: a "reassuring" creatinine in a tiny infant can coexist with a real reduction in filtration.

Fluid dilution

A positive cumulative fluid balance expands the volume of distribution and can dilute creatinine, delaying recognition of a rise. Fluid-adjusted (fluid-corrected) creatinine is an adjunctive research calculation — the PENUT (Preterm Erythropoietin Neuroprotection Trial) secondary analysis showed that correcting creatinine for fluid balance reclassifies some premature neonates as having AKI who were missed by the uncorrected value7 — but it is Investigational for staging: it is not part of the neonatal modified KDIGO consensus definition and should not be used to assign a stage.

Failure to decline

In HIE cohorts, an alternative phenotype has emerged: a creatinine that simply fails to fall as expected, without necessarily meeting a conventional rise-based criterion, identifies infants at risk who standard staging can miss.8 Consider failure-to-decline as a clinically meaningful signal that should heighten surveillance — but present it as an emerging phenotype, not as a new formal KDIGO stage, because it has not been incorporated into consensus staging and its thresholds are not standardized.

Emerging evidence

Assay and sampling limitations

Finally, the measurement itself is a variable. Jaffé-based assays are subject to interference (bilirubin, chromogens) that enzymatic assays largely avoid, and the two are not interchangeable when you compute a small absolute change of 0.3 mg/dL. Small blood volumes constrain sampling frequency, and every draw contributes to iatrogenic anemia — a real balancing harm of intensive surveillance. Point-of-care values should be trended within the known performance of the specific platform, not mixed indiscriminately with central-laboratory values.

Creatinine is a trajectory Serum creatinine → Postnatal days → Birth value ≈ maternal signal Expected fall Failure to decline Overt rise (stages) Modifiers at birth: maternal creatinine · gestational-age slope · low muscle mass · fluid dilution.
Conceptual trajectories — not neonatal reference intervals

Three shapes of the newborn creatinine curve: the expected postnatal fall, a plateau that fails to decline (an emerging HIE-associated phenotype, not a formal stage), and an overt rise that meets neonatal modified KDIGO. The birth value sits high because it partly reflects the mother.

KDIGO
Kidney Disease: Improving Global Outcomes staging system
HIE
Hypoxic-ischemic encephalopathy
Staging

The Current Diagnostic Standard — Neonatal Modified KDIGO

Neonatal modified KDIGO is the current standard for staging, and it should be used — with its limitations held in view. The two most consequential modifications from adult and pediatric KDIGO are that the comparator is the lowest previous serum creatinine (not a fixed "baseline"), reflecting that the healthy neonatal trajectory is downward, and that the urine-output thresholds are neonatal-specific.

Consensus / guideline Recommend
StageSerum creatinine criterionUrine-output criterion*
0No change, or a rise <0.3 mg/dL (<26.5 µmol/L)>1 mL/kg/h
1Rise ≥0.3 mg/dL within 48 h, or 1.5 to <2.0 × the lowest prior value within 7 d>0.5 to ≤1 mL/kg/h
22.0 to <3.0 × the lowest prior value within 7 d>0.3 to ≤0.5 mL/kg/h
3≥3.0 × the lowest prior value within 7 d, or creatinine ≥2.5 mg/dL (≥221 µmol/L), or KRT initiated for AKI≤0.3 mL/kg/h

*Urine-output criteria are frequently assessed over 24 hours in neonatal studies, because reliable hour-by-hour collection is often unavailable. The optimal neonatal threshold and duration remain unsettled — preserve the exact local protocol and the source definition whenever a shorter or longer window is used.

Several operating rules keep the staging honest. Use the lowest previous serum creatinine as the comparator under the neonatal modification. Stage by the most severe criterion met — if creatinine says stage 1 and urine output says stage 3, the infant is stage 3. Validate units and timestamps before computing any ratio, and do not convert an isolated value into a ratio when no eligible prior value exists within 7 days. Recognize that stage 0 does not mean the absence of kidney stress or injury — it means no KDIGO criterion was met from the available data, which is a different and weaker claim. KRT started for AKI automatically meets stage 3. And note the origin of the absolute threshold: a creatinine ≥2.5 mg/dL was chosen because it corresponds approximately to an estimated GFR (eGFR) below 10 mL/min/1.73 m² — but eGFR is not required, and should not be used, to assign an AKI stage.

⚠️

Honest limitations to state alongside the stage

Neonatal modified KDIGO measures dysfunction, not the earliest injury; it is affected by gestational age; it does not capture the failure-to-decline phenotype; it can be fooled by fluid dilution; and the optimal urine-output threshold and duration are genuinely uncertain. A documented stage is a communication tool and a research standard — not a substitute for the clinical judgment that integrates perfusion, fluid status, and cause.

Before You Stage

Data Quality Before Staging

A stage computed from bad data is worse than no stage, because it carries false authority. Walk this checklist before you commit a neonatal modified KDIGO stage to the chart or a research database.

Recognition

Risk-First Recognition

Because creatinine is a late marker, recognition should begin with risk, not with a number. The point of enumerating risk is not to compute a probability — this guide deliberately avoids a universal additive risk score, which would need external validation it does not yet have — but to trigger surveillance in the infants who most need it. Group the risk domains so nothing is missed on rounds.

Practice principle
DomainHigh-risk contexts
Developmental<28 weeks' gestation, birth weight <1,500 g, growth restriction, reduced nephron endowment
Hemodynamic / oxygen deliveryPerinatal asphyxia / HIE, shock, hypotension, hypoxemia, significant patent ductus arteriosus (PDA), cardiac surgery, ECMO
Inflammatory / critical illnessSepsis, NEC, multiorgan dysfunction, severe respiratory failure
Kidney / urinary anatomyCongenital anomalies of the kidney and urinary tract (CAKUT), obstruction, renal vein thrombosis, arterial thrombosis, solitary kidney
ExposureAminoglycosides, vancomycin and other nephrotoxins, iodinated contrast where relevant, multiple concurrent nephrotoxins, prolonged therapy
Iatrogenic / trajectoryRapid fluid accumulation, recurrent AKI, inability to monitor, dosing not updated for changing kidney function

The operating principle is to let any high-risk context move the infant onto a surveillance pathway — scheduled creatinine, deliberate urine-output measurement, and a running tally of nephrotoxin days — rather than waiting for a threshold to be breached and then reacting.

Six-domain neonatal AKI risk map around a central pair of kidneys: developmental (under 28 weeks, birth weight under 1500 g, growth restriction, low nephron endowment); hemodynamic/oxygen (asphyxia/HIE, shock, hypotension, hypoxemia, significant PDA, cardiac surgery, ECMO); inflammatory/critical illness (sepsis, NEC, multiorgan dysfunction, severe respiratory failure); kidney/urinary anatomy (CAKUT, obstruction, renal vein or arterial thrombosis, solitary kidney); exposure (aminoglycosides, vancomycin, other nephrotoxins, iodinated contrast); and iatrogenic/trajectory (rapid fluid accumulation, recurrent AKI, dosing not updated). Caption: risk-first recognition, trigger surveillance, not a score.
Risk-first recognition

Six risk domains that should trigger surveillance rather than generate a probability: developmental, hemodynamic/oxygen delivery, inflammatory/critical illness, kidney/urinary anatomy, nephrotoxin exposure, and iatrogenic/trajectory. Any high-risk context moves the infant onto a surveillance pathway.

HIE
Hypoxic-ischemic encephalopathy
PDA
Patent ductus arteriosus
ECMO
Extracorporeal membrane oxygenation
NEC
Necrotizing enterocolitis
CAKUT
Congenital anomalies of the kidney and urinary tract
Workup

Diagnostic Approach When AKI Is Suspected

When a signal appears — a rising or failing-to-fall creatinine, low urine output, or simply a high-risk exposure — work through a phenotype-based sequence rather than reaching for a reflex intervention.

Phenotype-based workflow
1
Verify the signal. Repeat or confirm a discordant creatinine; validate the urine-output data against the collection method; plot weight and cumulative balance. A staging decision built on an unverified value propagates the error.
2
Assess circulation and oxygen delivery. Perfusion, blood pressure (BP) trend, lactate trend in context, cardiac function, vasoactive support, hemoglobin, and oxygenation — the upstream determinants of glomerular filtration.
3
Define the fluid phenotype. Depleted, euvolemic, overloaded, capillary leak, or third-spacing. Do not infer intravascular volume from edema alone — an infant can be interstitially overloaded and intravascularly depleted at the same time.
4
Review infection, inflammation, and organ interactions. Sepsis, NEC, HIE, respiratory failure, liver dysfunction — the systemic drivers and the cross-organ context.
5
Reconcile medications. Necessity, combination burden, dosing interval, therapeutic drug monitoring (TDM), and any recent contrast. This is where preventable harm is most often found and most easily undone.
6
Exclude postrenal and vascular causes. Confirm bladder and catheter patency; obtain ultrasound with Doppler when anatomy, obstruction, thrombosis, or perfusion is in question.
7
Characterize the consequences. Potassium, sodium, bicarbonate/acid-base, calcium, magnesium, phosphate, glucose, urea, degree of fluid accumulation, and whether nutrition can still be delivered.
8
Consult early. Involve pediatric nephrology for severe or progressive AKI, unclear cause, congenital or vascular disease, refractory complications, or any prospect of KRT.

Hold a differential across five categories — pre-renal/hemodynamic, intrinsic, postrenal, vascular, and congenital/genetic — and resist a common shorthand: labelling an episode "pre-renal" does not make it benign. Sustained hypoperfusion can coexist with, and progress to, structural tubular injury; "pre-renal" describes a mechanism, not a reassurance.

Portrait phenotype-based workflow for suspected neonatal AKI: nine numbered steps from verifying the signal, assessing circulation and oxygen delivery, defining the fluid phenotype, reviewing infection and medications, excluding postrenal and vascular causes, characterizing consequences, to consulting pediatric nephrology early, with a red urgent-escalation node and an amber pre-renal caution node.
Diagnostic workflow

A top-to-bottom phenotype workflow for suspected neonatal AKI — verify the signal, assess circulation and oxygen delivery, define the fluid phenotype, review infection and medications, exclude postrenal and vascular causes, characterize consequences, and consult nephrology early. The red node is the urgent-escalation exception: do not wait for a creatinine threshold.

AKI
Acute kidney injury
BP
Blood pressure
NEC
Necrotizing enterocolitis
HIE
Hypoxic-ischemic encephalopathy
TDM
Therapeutic drug monitoring
KRT
Kidney replacement therapy
Biomarkers

Biomarkers and Measured Function

The appeal of a biomarker in the newborn is obvious: creatinine is late, muscle-dependent, and dilutable, so a marker that rises earlier or reads filtration without the muscle-mass confound would be genuinely useful. The honest state of the evidence is that these markers add information but do not yet come with the validated, universal thresholds that would let them stand alone.

Serum cystatin C

Cystatin C is filtered by the glomerulus, is far less dependent on muscle mass than creatinine, and does not substantially cross the placenta — three properties that make it attractive in neonates. A large multicenter cohort proposed cystatin C–based neonatal AKI criteria and reported that they detected substantially more cases than the modified creatinine criteria, in infants who were themselves at elevated risk of in-hospital mortality.9 The caveats are real: values remain age- and context-dependent, and neonatal reference intervals and AKI definitions are not fully standardized. Do not routinely use a cystatin C change to assign a neonatal KDIGO stage — the staging system is creatinine- and urine-output-based, and substituting a different analyte into it is not validated.

Urinary NGAL

Urinary NGAL (neutrophil gelatinase-associated lipocalin) can rise earlier than creatinine after tubular injury and has shown promising diagnostic performance in preterm neonates. But its baseline varies widely by gestational age, birth weight, assay, inflammation, and clinical context, and a 2025 systematic review and meta-analysis of preterm neonates found a wide non-AKI range.11 The direct implication: Do not publish or adopt a single universal diagnostic cutoff. A local program may reasonably Consider assay- and population-validated thresholds as an adjunct to surveillance — and uNGAL has been used specifically to screen for nephrotoxic-medication-associated AKI in neonates14 — but as a supplement to, not a replacement for, creatinine and urine-output monitoring.

Emerging evidence

Other biomarkers

Kidney injury molecule-1 (KIM-1), interleukin-18 (IL-18), liver-type fatty acid-binding protein (L-FABP), the cell-cycle-arrest pair tissue inhibitor of metalloproteinases-2 and insulin-like growth factor-binding protein 7 (TIMP-2·IGFBP7), osteopontin, epidermal growth factor (EGF), and uromodulin have all been studied, and a broader systematic review has examined serum and urinary biomarkers for predicting AKI in premature infants.10 Across this literature the pattern repeats: promising signal, insufficient standardization, and no actionable universal neonatal threshold. Treat them as research tools for now.

eGFR and measured GFR

Estimating equations for GFR are limited in neonates by rapidly changing physiology, uncertain steady state, and dependence on the biomarker and assay. Do not diagnose or stage AKI from an eGFR decline alone. Measured GFR using an exogenous filtration marker is a specialized tool for defined questions, not a routine acute bedside test.

Three-column comparison of neonatal kidney markers — serum creatinine, cystatin C, and urinary NGAL — each with what it measures, its strength, and its neonatal limitation. Header: none is a biopsy or an etiologic diagnosis. Footer: use markers together and in context; creatinine plus urine output remain the staging basis.
What each marker measures

Serum creatinine and cystatin C are filtration markers — creatinine late and confounded by muscle mass and fluid; cystatin C less muscle-dependent but not standardized. Urinary NGAL is an early tubular-injury marker with a wide non-AKI range and no universal cutoff. None is a diagnosis: creatinine plus urine output remain the staging basis.

NGAL / uNGAL
Neutrophil gelatinase-associated lipocalin / urinary NGAL
AKI
Acute kidney injury
KDIGO
Kidney Disease: Improving Global Outcomes staging system
Prevention

Prevention and Nephrotoxin Stewardship

Prevention is where the most convincing actionable evidence in neonatal AKI sits, because a large share of neonatal AKI is nephrotoxin-associated and therefore, in principle, modifiable. The unit-level work is unglamorous and effective: name AKI clinical champions across neonatology, nursing, pharmacy, and nephrology; adopt a written neonatal AKI definition and documentation standard; identify high-risk infants prospectively; standardize urine measurement and creatinine surveillance; implement nephrotoxin alerts (or a manual list where the electronic record cannot support them); carry AKI into handoffs, rounds, and discharge summaries; and audit exposure days, AKI events, screening adherence, and balancing measures such as blood sampling and transfusion.

Emerging evidence (single-center QI) Recommend the approach

The Baby NINJA program

Baby NINJA (Nephrotoxic Injury Negated by Just-in-time Action) is the concrete exemplar. In a single-center, level-IV NICU quality-improvement program, infants were screened for high-risk exposure — ≥3 nephrotoxic medications within 24 hours, or ≥4 calendar days of intravenous aminoglycoside — and those who met the trigger had a daily serum creatinine until 2 days after exposure ended or AKI resolved, whichever came later. Over the program, high-risk exposure fell from 16.4 to 9.6 per 1,000 patient-days, the proportion of nephrotoxin-associated AKI fell from 30.9% to 11.0%, and AKI intensity (days in AKI) also fell.12 Implementation strategies for spreading the bundle have since been described.13

State the limitations as plainly as the result: this is a nonrandomized, single-center quality-improvement study, its effect is a bundle effect rather than an isolated intervention, and its medication definitions and implementation are local. It is compelling implementation evidence — not a multicenter randomized trial — and that distinction should survive editing. One design note carries over to any adopting unit: Do not hard-code a universal nephrotoxin list into clinical logic without pharmacy ownership. Store the list in versioned content that local teams control, so it can be updated as formularies and evidence change, and so an unavoidable but necessary therapy is never miscoded as an error.

Circular six-step Baby NINJA nephrotoxin-stewardship loop: (1) pharmacy-owned, versioned nephrotoxin list; (2) trigger of three or more nephrotoxic medications in 24 hours or four or more calendar days of IV aminoglycoside; (3) surveillance with daily serum creatinine until 2 days after exposure ends or AKI resolves; (4) review of necessity, combination burden, dose interval, and therapeutic drug monitoring; (5) stop monitoring after the window; (6) audit of exposure days, AKI events, and balancing measures. Labelled single-center QI evidence, adapt to local policy.
Baby NINJA surveillance loop

A pharmacy-owned nephrotoxin list feeds the exposure trigger (≥3 nephrotoxic medications in 24 h, or ≥4 calendar days of IV aminoglycoside), which starts daily creatinine until 2 days after exposure or AKI resolves, prompts a necessity/dose/TDM review, then stops and audits. Single-center quality-improvement evidence — adapt to local policy.

Baby NINJA
Nephrotoxic Injury Negated by Just-in-time Action
AKI
Acute kidney injury
IV
Intravenous
TDM
Therapeutic drug monitoring
QI
Quality improvement
Management

Management After AKI Is Recognized

Organize management by physiologic objective, not by a rigid sequence. The four objectives below run in parallel, and the judgment is in balancing them against each other in a specific infant.

Restore effective perfusion without causing fluid harm

Treat the cause of shock and impaired oxygen delivery. A fluid bolus is a therapeutic trial, justified only when the clinical phenotype suggests the infant might be fluid-responsive — not a reflex response to oliguria or to a rising creatinine. Reassess after every intervention, and remember that edema or a positive cumulative balance does not prove adequate intravascular volume. Use hemodynamic and echocardiographic context wherever it is available. Do not give repeated boluses to an anuric, interstitially overloaded infant on the theory that "the kidney needs volume."

Manage fluid accumulation

Track weight, cumulative intake/output, insensible-loss assumptions, sodium exposure, respiratory status, and the degree to which fluid is displacing nutrition. Diuretics may help manage established fluid overload in a diuretic-responsive infant, but they neither reverse kidney injury nor, by producing urine, prove that the kidney has recovered. Consider early escalation when fluid constraints begin to prevent ventilation, nutrition, medication delivery, or correction of metabolic complications — that functional threshold, not a creatinine value, is often the real trigger for KRT.

Electrolytes and acid-base

Hyperkalemia, hyponatremia and hypernatremia, metabolic acidosis, and disturbances of calcium, magnesium, and phosphate are neonatal emergencies that require cause-specific, institution-approved protocols. This guide deliberately publishes no treatment doses — neonatal electrolyte correction is dose-sensitive and context-dependent, and belongs in your unit's emergency protocols and neonatal drug references, not in a general reference page. Recommend that each of these link to a local, currently approved protocol.

Medication stewardship and nutrition

Stop nonessential nephrotoxins. Recalculate doses and intervals using neonatal pharmacology resources and TDM, and do not assume that a creatinine-based eGFR accurately predicts clearance for every drug — during rapidly changing function, and during KRT, dosing must be reassessed frequently. On nutrition, the goal is to preserve growth and protein-energy delivery: Do not reflexively restrict protein simply to lower urea, because catabolism and impaired growth carry their own harms in a neonate. Account for electrolyte burden, fluid concentration, catabolism, and losses during KRT, and involve a neonatal dietitian and pharmacist; numerical nutrition targets are context-dependent and should follow the neonatal renal-nutrition literature and local protocol19 rather than a fixed prescription embedded here.

Practice principle
Pharmacology

Methylxanthines — Established Signal, Narrow Indications, Open Questions

Theophylline in perinatal asphyxia / HIE

The mechanistic rationale is coherent: during asphyxia, adenosine accumulates and, acting at renal A1 receptors, causes afferent arteriolar vasoconstriction that lowers GFR. Theophylline, a nonselective adenosine-receptor antagonist, is proposed to blunt that vasoconstriction. Systematic-review evidence supports a real kidney signal — a prophylactic single dose of theophylline (or aminophylline) can reduce severe renal dysfunction and AKI in term neonates with severe birth asphyxia.1516 Two disciplines of interpretation matter. First, separate the kidney outcome from survival and neurodevelopmental outcomes — the renal benefit does not automatically translate into better long-term brain outcomes, and the trials were not powered to settle that. Second, applicability in the current therapeutic-hypothermia era, along with safety, drug interactions, and dosing, depends on your local neonatal protocol.

Moderate clinical evidence (defined context) Consider — in HIE/asphyxia only
🔬

How to phrase the theophylline recommendation

Consider a prophylactic dose only in the defined severe-birth-asphyxia/HIE context, under a neonatology protocol and current local guidance — not for undifferentiated neonatal AKI. The evidence is for a specific population and a specific timing; it does not generalize to the general NICU AKI population.

Caffeine

Observational data in preterm infants suggest a lower AKI incidence with early caffeine exposure, but confounding by indication and survivor/treatment bias remain plausible explanations, so this is an association, not evidence of a protective effect. Any newer systematic-review evidence should be weighed only after its full peer-reviewed publication details and included studies can be verified — a search-engine preview is not a citable source. Do not start caffeine solely for kidney protection outside a trial or an approved neonatal indication (such as apnea of prematurity, for which caffeine is separately indicated).

Emerging / observational Do not routinely use for AKI prophylaxis
Escalation

Kidney Replacement Therapy

KRT in the neonate is a high-level escalation decision; the technical prescription (dwell volumes, clearance dose, anticoagulation, blood priming, ultrafiltration targets) belongs to the treating team and a dedicated technical resource, not to a general guide. Two things are worth fixing firmly here: the indications are clinical and trajectory-based, and modality choice is driven by the infant's physiology and the unit's capability.

Indications are clinical, not creatinine-only

Escalate for refractory hyperkalemia or another dangerous electrolyte disturbance; refractory metabolic acidosis; symptomatic or progressive fluid overload compromising organ support; uremic complications; oliguria or anuria with an inability to deliver necessary nutrition, blood products, or medications; and selected intoxications or inborn metabolic disorders. Notice that none of these is a creatinine number — the functional inability to run the rest of the infant's care is usually the real trigger, which is why a creatinine threshold should never be the gate that delays KRT.

Consensus / guideline
ModalityPotential roleImportant neonatal constraints
Peritoneal dialysis (PD)Widely accessible; effective for many neonatal AKI scenarios; no vascular access or anticoagulation requiredRecent abdominal surgery, NEC, diaphragmatic defects, and leaks limit it; catheter access and ultrafiltration precision are constraints
Continuous KRT (CKRT)Continuous control in the hemodynamically unstable infant; modern infant-dedicated systems reduce the extracorporeal-volume mismatch that older adult machines imposedVascular access, circuit volume, anticoagulation, staffing, and machine availability
Prolonged / intermittent therapiesSelected larger or more stable infants, where the expertise existsHemodynamic tolerance and fluid-shift precision

The 2020 update of the International Society for Peritoneal Dialysis (ISPD) guidelines for peritoneal dialysis in AKI covers both adults and pediatrics and is the reference point for PD practice.17 On the device side, the I-KID (Infant Kidney Dialysis and Ultrafiltration) stepped-wedge cluster-randomized study compared PD, continuous venovenous hemofiltration, and a novel infant-dedicated hemodialysis device — part of a broader move toward equipment designed for neonatal circuit volumes rather than adapted from adult hardware.18 Do not take dwell volume, clearance dose, or ultrafiltration targets from a general guide; those are set at the bedside with nephrology.

Three-column neonatal kidney replacement therapy modality comparison — peritoneal dialysis, continuous KRT, and prolonged/intermittent — each with its role and neonatal constraints. Footer: choose by hemodynamic stability, abdominal contraindications, vascular access, required precision, and local expertise.
KRT modality selection

Peritoneal dialysis is accessible and needs no vascular access but is limited by abdominal pathology; CKRT gives continuous control in unstable infants but needs access, circuit-volume management, and staffing; prolonged/intermittent therapies suit selected stable infants. Choice follows stability, contraindications, access, precision, and local expertise — not a creatinine threshold.

KRT
Kidney replacement therapy
PD
Peritoneal dialysis
CKRT
Continuous kidney replacement therapy
NEC
Necrotizing enterocolitis
Transition

Recovery, Recurrent AKI, and Discharge Documentation

Define recovery carefully. Recovery is a return toward a gestation- and postnatal-age-appropriate trajectory, resolution of the metabolic and volume complications, and stable fluid status — not merely a creatinine that has landed in a "normal" range. A creatinine that looks normal in a low-muscle-mass infant can still sit on an abnormal trajectory, and recurrent AKI within the admission is common in the most premature infants. The transition out of the NICU is exactly where kidney risk tends to be dropped, so the defense is a structured, portable record that follows the infant.

Discharge kidney-AKI data block — carry forward on every at-risk graduate AKI present: yes / no / uncertain Maximum neonatal modified KDIGO stage: Creatinine — baseline/comparator, peak, and discharge value (with dates and units): Lowest urine output, with measurement window and method: Number of AKI episodes / recurrent AKI: KRT — modality, dates, indication: Probable phenotype / etiology: Major nephrotoxin exposures: Discharge BP, with percentile and method: Kidney imaging findings: Ongoing nephrotoxic or renally cleared medications: Kidney follow-up risk tier and responsible clinician: Planned assessment date and components:
Follow-up

Post-NICU Kidney Health Monitoring

The follow-up architecture below reproduces the 2024 modified-Delphi consensus statement on kidney health monitoring in NICU graduates.20 Its evidence level should be stated as the consensus itself reports it — predominantly expert consensus (largely level 3 or 5), not derived from randomized trials — and a related expanded discussion elaborates the reasoning for critically ill term and late-preterm infants after AKI.21 The longitudinal signal that motivates it is real if imperfectly causal: preterm birth is associated with a higher risk of CKD from childhood into mid-adulthood,22 and the FANCY cohort found more renal dysfunction in early childhood among very-low-birth-weight children who had neonatal AKI than in those who did not.23

Consensus (largely expert, level 3–5) Recommend

Universal discharge kidney evaluation for at-risk infants

For preterm infants born before 34 weeks, critically ill infants who had AKI, and infants with critical cardiac disease, the consensus recommends, at discharge: a properly obtained blood pressure, a serum creatinine, and kidney-health education with explicit follow-up ownership. Evidence of kidney disease at discharge — a creatinine ≥0.5 mg/dL, a blood pressure above the 95th percentile, treated hypertension, nephrocalcinosis, or CAKUT — should trigger pediatric nephrology follow-up according to local guidance.

Consensus follow-up router

GroupRecommended follow-up
28 to <34 weeks, otherwise at-riskBlood-pressure assessment and kidney-health education at age 2 years; consider comprehensive assessment sooner if risk-modifying exposures occur
<28 weeks, birth weight <1,500 g, or AKI/dialysis in a preterm infantComprehensive kidney-health assessment at age 2 years, or sooner after additional significant exposures/events
≥34 weeks with stage 1 AKIComprehensive kidney-health assessment at age 2 years
≥34 weeks with stage 2/3 AKI, dialysis, recurrent AKI, or AKI plus severe comorbidity (ECMO, congenital diaphragmatic hernia [CDH], HIE, NEC, chronic lung disease [CLD])Comprehensive assessment within 6 months of discharge and again at age 2 years; interim frequency individualized
Critical cardiac disease, otherwise at-riskComprehensive assessment at age 2 years or sooner after a risk-modifying exposure/event
High-risk critical cardiac diseaseComprehensive assessment at least every 6 months through age 2 years, plus annual nephrology follow-up

Where two categories apply, follow the earlier and more intensive recommendation and record every qualifying reason; the high-risk critical-cardiac pathway supersedes the ordinary at-risk cardiac pathway. A "comprehensive kidney-health assessment," per the consensus, comprises interval history and exposures, growth, a properly measured blood pressure, a serum creatinine with context-appropriate assessment of filtration, urinalysis and urine protein/albumin assessment where feasible and indicated, and kidney imaging when clinically indicated. Where the consensus deliberately leaves components flexible, do not invent a fixed universal panel — adapt to the local standard.

Portrait 2024-consensus post-NICU kidney-health follow-up router: an at-risk graduate (under 34 weeks, critically ill with AKI, or critical cardiac disease) gets a discharge kidney evaluation; evidence of kidney disease at discharge (creatinine 0.5 mg/dL or higher, BP above the 95th percentile, treated hypertension, nephrocalcinosis, or CAKUT) routes to pediatric nephrology; otherwise six numbered group branches set the follow-up timing, with an amber caveat that this is expert consensus with limited direct trial evidence.
Consensus follow-up router

The 2024 modified-Delphi router. Every at-risk graduate gets a discharge kidney evaluation; evidence of kidney disease at discharge (creatinine ≥0.5 mg/dL, BP >95th percentile, treated hypertension, nephrocalcinosis, or CAKUT) routes to pediatric nephrology. Otherwise follow-up intensity is set by gestation, AKI stage, and comorbidity. Expert consensus — limited direct trial evidence.

NICU
Neonatal intensive care unit
AKI
Acute kidney injury
BP
Blood pressure
CAKUT
Congenital anomalies of the kidney and urinary tract
CDH
Congenital diaphragmatic hernia
CLD
Chronic lung disease
Implementation

Implementation in Lower-Resource NICUs

Competent neonatal AKI care does not require advanced biomarkers or infant-dedicated machines, and it should not be framed as though it did — a framing that would let a well-equipped unit feel exempt from the cheap, high-yield work and leave a resource-limited unit feeling it cannot begin. For the Philippines and similar settings, the standard holds while the tooling adapts.

Use paper or spreadsheet triggers where no electronic alert exists. Standardize diaper weighing, and apply the convention that 1 g of weight gain approximates 1 mL of urine only where the scale precision and contamination limits are understood. Prioritize serial creatinine for the highest-risk exposure windows when blood volume is constrained, rather than sampling everyone equally. Maintain a pharmacist-owned local nephrotoxin list. Establish referral or teleconsult criteria with the nearest pediatric nephrology service before you need them urgently. Ensure discharge summaries carry the peak stage, the last creatinine, the blood pressure, the major exposures, and the follow-up date. And do not imply that urinary NGAL, cystatin C, infant-specific CKRT systems, or measured GFR are prerequisites for good care — they are refinements, not entry requirements.

Practice principle
Not Settled

Uncertainties and Research Agenda

An honest guide names what it does not know, because manufactured certainty removes the clinician's ability to reason about the infant who sits between the trials. The following remain genuinely unsettled.

⚠️

Open questions in neonatal AKI

Gestational-age-specific creatinine thresholds; the formal incorporation of failure-to-decline phenotypes into staging; the optimal neonatal urine-output threshold and collection duration; whether and how to standardize fluid-adjusted creatinine; assay-, gestation-, and context-specific reference ranges for uNGAL and cystatin C; biomarker-guided treatment trials; external validation and impact testing of prediction models; caffeine specifically for AKI prevention; the best timing and modality of neonatal KRT; the long-term causal relationship between neonatal AKI and CKD independent of prematurity and critical illness; and the optimal content and cadence of follow-up beyond age 2 years.

Clinician FAQ

Twelve Questions From the Bedside

1. Can neonatal AKI be present when the creatinine does not rise?
Yes. Injury can precede any measurable change in filtration, and in a low-muscle-mass infant a real fall in GFR may move the creatinine only slightly. A creatinine that fails to decline as expected can itself signal risk. Stage 0 means no KDIGO criterion was met from the data available — not that the kidney is uninjured.
2. What should be used as the baseline creatinine?
Under the neonatal modification, the comparator is the lowest previous serum creatinine within the relevant window, not a fixed admission value. In the first postnatal days, be wary of anchoring to a birth value that still reflects maternal creatinine.
3. Does a failure of creatinine to fall qualify as AKI?
Not as a formal stage. Failure-to-decline is an emerging phenotype, described mainly in HIE cohorts, that identifies risk conventional criteria can miss. Treat it as a reason to intensify surveillance and search for cause — not as a new KDIGO category, because it is not part of consensus staging.
4. How should fluid accumulation alter interpretation?
A positive cumulative balance can dilute creatinine and delay recognition of a rise. Read creatinine alongside weight and cumulative intake/output. Fluid-adjusted creatinine is an adjunctive research calculation that may reclassify some infants, but it is not part of consensus staging and should not be used to assign a stage.
5. What urine-output window should be used?
Neonatal studies frequently operationalize the urine-output criteria over 24 hours because reliable hourly collection is often unavailable. The optimal threshold and duration are unsettled. Use and document your local protocol, and record the collection method, because diaper weighing, leakage, and undocumented voids all corrupt the rate.
6. Is cystatin C better than creatinine in a newborn?
It has real advantages — less muscle-mass dependence and minimal placental transfer — and cystatin C–based criteria detect more cases than modified creatinine criteria in at-risk neonates. But reference intervals and definitions are not standardized, and it should not be dropped into the KDIGO staging system in place of creatinine.
7. Can uNGAL replace daily blood sampling?
No. Urinary NGAL can rise earlier than creatinine, but its non-AKI range is wide and assay-, gestation-, and inflammation-dependent, so there is no universal cutoff. A locally validated threshold may serve as an adjunct to surveillance — including for nephrotoxin screening — not as a replacement for creatinine monitoring.
8. Should caffeine be started to prevent AKI?
Not for that reason alone. The preterm data suggesting lower AKI incidence are observational and open to confounding by indication and survivor bias. Caffeine has its own accepted neonatal indications; kidney protection outside a trial or an approved indication is not one of them.
9. Do diuretics treat neonatal AKI?
No. Diuretics may help manage fluid overload in a diuretic-responsive infant, but they do not reverse established injury, and urine produced in response to a diuretic does not prove renal recovery. Reserve them for the fluid-overload problem, not the injury.
10. When should pediatric nephrology be called?
Early — for severe or progressive AKI, an unclear cause, congenital or vascular disease, refractory metabolic or volume complications, or any prospect of KRT. Consultation is a low-cost, high-value step that should not wait for a threshold.
11. When should KRT be considered?
On clinical grounds and trajectory, not a creatinine value: refractory hyperkalemia or acidosis, symptomatic or progressive fluid overload, uremic complications, an inability to deliver nutrition or medications because of oliguria, or selected intoxications/metabolic disorders. Modality follows the infant's stability and the unit's capability.
12. Who needs kidney follow-up after NICU discharge?
At minimum, preterm infants born before 34 weeks, critically ill infants who had AKI, and infants with critical cardiac disease — with intensity stratified by the 2024 consensus router. Any evidence of kidney disease at discharge (creatinine ≥0.5 mg/dL, blood pressure >95th percentile, treated hypertension, nephrocalcinosis, or CAKUT) should route to pediatric nephrology.
Glossary & abbreviationsTalahulugan at mga daglatTalaan sa mga pulong ug daglatTalatinigan ampo reng daglat terms used in this guide

Abbreviations

AKI
Acute kidney injury.
AWAKEN
Assessment of Worldwide Acute Kidney Injury Epidemiology in Neonates — the landmark 24-center neonatal AKI cohort.
BP
Blood pressure.
CAKUT
Congenital anomalies of the kidney and urinary tract.
CDH
Congenital diaphragmatic hernia.
CI
Confidence interval.
CKD
Chronic kidney disease.
CKRT
Continuous kidney replacement therapy.
CLD
Chronic lung disease (of prematurity).
ECMO
Extracorporeal membrane oxygenation.
EGF
Epidermal growth factor — a candidate tubular biomarker.
eGFR
Estimated glomerular filtration rate.
GFR
Glomerular filtration rate.
HIE
Hypoxic-ischemic encephalopathy.
IGFBP7
Insulin-like growth factor-binding protein 7 — cell-cycle-arrest biomarker (paired with TIMP-2).
IL-18
Interleukin-18 — an inflammatory tubular-injury biomarker.
ISPD
International Society for Peritoneal Dialysis.
IV
Intravenous.
KDIGO
Kidney Disease: Improving Global Outcomes — the guideline body and staging system.
KIM-1
Kidney injury molecule-1 — a tubular-injury biomarker.
KRT
Kidney replacement therapy (dialysis or hemofiltration).
L-FABP
Liver-type fatty acid-binding protein — a tubular-injury biomarker.
NEC
Necrotizing enterocolitis.
NGAL / uNGAL
Neutrophil gelatinase-associated lipocalin / urinary NGAL — an injury-associated biomarker.
NICU
Neonatal intensive care unit.
NIDDK
(US) National Institute of Diabetes and Digestive and Kidney Diseases.
OR
Odds ratio.
PD
Peritoneal dialysis.
PDA
Patent ductus arteriosus.
PENUT
Preterm Erythropoietin Neuroprotection Trial — source of the fluid-corrected-creatinine secondary analysis.
QI
Quality improvement.
RCT
Randomized controlled trial.
SCr
Serum creatinine.
TDM
Therapeutic drug monitoring.
TIMP-2
Tissue inhibitor of metalloproteinases-2 — cell-cycle-arrest biomarker (paired with IGFBP7).
UOP
Urine output.
VLBW
Very low birth weight (<1,500 g).

Terms

Baby NINJA
Nephrotoxic Injury Negated by Just-in-time Action — a NICU nephrotoxin-stewardship quality-improvement program.
Failure to decline
A creatinine that does not fall as expected after birth; an emerging risk phenotype (mainly in HIE), not a formal KDIGO stage.
Fluid-adjusted creatinine
Creatinine mathematically corrected for cumulative fluid balance; an adjunctive research calculation, not part of consensus staging.
Jaffé assay
A colorimetric creatinine assay subject to chromogen interference; not interchangeable with enzymatic assays for small changes.
Nephrocalcinosis
Calcium deposition in the kidney, seen on imaging; a discharge marker that can trigger nephrology follow-up.
Nephrogenesis
Formation of nephrons in utero, continuing to roughly 34–36 weeks; not completed after preterm birth.
Nephron endowment
The total number of nephrons a person is born with; reduced endowment is a life-course susceptibility factor.
Oliguria
Reduced urine output; in the neonate, graded against weight-normalized thresholds (mL/kg/h).
Pre-renal
AKI driven by reduced kidney perfusion; a mechanism, not a guarantee of harmlessness, since sustained hypoperfusion can cause structural injury.
Therapeutic hypothermia
Controlled cooling used to treat HIE; alters drug handling and is the modern backdrop to theophylline use.
ReferencesMga SanggunianMga TinubdanReng Reperensya 23 sources
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  2. Zappitelli, M., Ambalavanan, N., Askenazi, D. J., et al. (2017). Developing a neonatal acute kidney injury research definition: A report from the NIDDK neonatal AKI workshop. Pediatric Research, 82(4), 569-573. https://doi.org/10.1038/pr.2017.136
  3. Jetton, J. G., Boohaker, L. J., Sethi, S. K., et al. (2017). Incidence and outcomes of neonatal acute kidney injury (AWAKEN): A multicentre, multinational, observational cohort study. The Lancet Child & Adolescent Health, 1(3), 184-194. https://pubmed.ncbi.nlm.nih.gov/29732396/
  4. Meena, J., Kumar, J., Kocharlakota, J. P., et al. (2024). Acute kidney injury in neonates: A meta-analysis. Pediatrics, 154, e2023065182. https://pubmed.ncbi.nlm.nih.gov/38872621/
  5. Askenazi, D., Abitbol, C., Boohaker, L., et al. (2019). Optimizing the AKI definition during the first postnatal week using AWAKEN. Pediatric Research, 85, 329-338. https://pubmed.ncbi.nlm.nih.gov/30643188/
  6. De Mul, A., Parvex, P., Heneau, A., et al. (2022). Urine output monitoring for the diagnosis of early-onset acute kidney injury in very preterm infants. Clinical Journal of the American Society of Nephrology, 17, 949-956. https://doi.org/10.2215/CJN.15231121
  7. Starr, M. C., Griffin, R. L., Harer, M. W., et al. (2023). Acute kidney injury defined by fluid-corrected creatinine in premature neonates: A secondary analysis of the PENUT randomized clinical trial. JAMA Network Open, 6, e2328182. https://doi.org/10.1001/jamanetworkopen.2023.28182
  8. Ahn, H. C., Frymoyer, A., Boothroyd, D. B., et al. (2024). Acute kidney injury in neonates with hypoxic-ischemic encephalopathy based on serum creatinine decline compared with KDIGO criteria. Pediatric Nephrology, 39, 2789-2796. https://pubmed.ncbi.nlm.nih.gov/38326648/
  9. Xu, X., Nie, S., Xu, H., et al. (2023). Detecting neonatal AKI by serum cystatin C. Journal of the American Society of Nephrology, 34, 1253-1263. https://doi.org/10.1681/ASN.0000000000000125
  10. Kuo, J., Akison, L. K., Chatfield, M. D., et al. (2022). Serum and urinary biomarkers to predict acute kidney injury in premature infants: A systematic review and meta-analysis. Journal of Nephrology, 35, 2001-2014. https://pubmed.ncbi.nlm.nih.gov/35384606/
  11. Mohamed, T., Alexander, R., Davidson, B., et al. (2025). Urinary neutrophil gelatinase-associated lipocalin values in preterm neonates: A systematic review and meta-analysis. American Journal of Perinatology, 42, 683-688. https://pubmed.ncbi.nlm.nih.gov/39437994/
  12. Stoops, C., Stone, S., Evans, E., et al. (2019). Baby NINJA (Nephrotoxic Injury Negated by Just-in-time Action): Reduction of nephrotoxic medication-associated acute kidney injury in the neonatal intensive care unit. The Journal of Pediatrics, 215, 223-228.e6. https://pubmed.ncbi.nlm.nih.gov/31761141/
  13. Stone, S. B., Bisaccia, E., Zakhary, M. S., et al. (2023). Implementation strategies for Baby NINJA. The Journal of Pediatric Pharmacology and Therapeutics, 28, 287-296. https://pubmed.ncbi.nlm.nih.gov/37795277/
  14. Slagle, C. L., Hemmelgarn, T., Gavigan, H. W., et al. (2024). Use of urine neutrophil gelatinase-associated lipocalin for nephrotoxic-medication acute kidney injury screening in neonates. Journal of Perinatology, 44, 1780-1785. https://pubmed.ncbi.nlm.nih.gov/38514742/
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  16. Bellos, I., Pandita, A., & Yachha, M. (2021). Effectiveness of theophylline in neonates with perinatal asphyxia: A meta-analysis. The Journal of Maternal-Fetal & Neonatal Medicine, 34, 3080-3088. https://pubmed.ncbi.nlm.nih.gov/31558088/
  17. Nourse, P., Cullis, B., Finkelstein, F., et al. (2021). ISPD guidelines for peritoneal dialysis in acute kidney injury: 2020 update (adults and pediatrics). Peritoneal Dialysis International, 41, 15-31. https://pubmed.ncbi.nlm.nih.gov/33523772/
  18. Lambert, H., et al. (2023). The Infant Kidney Dialysis and Ultrafiltration (I-KID) study: A stepped-wedge cluster-randomized study in infants, comparing peritoneal dialysis, continuous venovenous hemofiltration, and a novel infant hemodialysis device. Pediatric Critical Care Medicine, 24(7), 604-613. https://doi.org/10.1097/PCC.0000000000003220
  19. Nesargi, S., Steflik, H., Kamath, N., Selewski, D., Gist, K. M., & Menon, S. (2024). Optimizing nutrition in neonates with kidney dysfunction. NeoReviews, 25(1), e25-e35. https://doi.org/10.1542/neo.25-1-e25
  20. Starr, M. C., Harer, M. W., Steflik, H. J., et al. (2024). Kidney health monitoring in neonatal intensive care unit graduates: A modified Delphi consensus statement. JAMA Network Open, 7, e2435043. https://doi.org/10.1001/jamanetworkopen.2024.35043
  21. Vuong, K. T., Liberio, B. M., Schwartz, S. R., et al. (2025). Expanded discussion of kidney health monitoring for critically ill term and late preterm infants after acute kidney injury. Pediatric Nephrology, 40, 2993-3004. https://pubmed.ncbi.nlm.nih.gov/40232498/
  22. Crump, C., Sundquist, J., Winkleby, M. A., & Sundquist, K. (2019). Preterm birth and risk of chronic kidney disease from childhood into mid-adulthood: National cohort study. BMJ, 365, l1346. https://doi.org/10.1136/bmj.l1346
  23. Harer, M. W., Pope, C. F., Conaway, M. R., & Charlton, J. R. (2017). Follow-up of Acute kidney injury in Neonates during Childhood Years (FANCY): A prospective cohort study. Pediatric Nephrology, 32, 1067-1076. https://doi.org/10.1007/s00467-017-3603-x
Dr. W Rivero, MD

W Rivero, MD, FPCP, DPSN

Specialist in Internal Medicine, Nephrology, and Clinical Nutrition. Practicing integrative and evidence-based nephrology across Quezon City, Pampanga, and Bulacan.

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