Beyond Biomarkers: Machine Learning in Diagnosing Acute Kidney Injury

[...]many individuals donating a kidney for transplant have less than a 0.3 mg/dL increase in their serum creatinine level (the increment in serum creatinine used by the AKIN to diagnose AKI), even though they have lost one-half of their total kidney function. [...]loss of up to 50% of total kidney...

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Published inMayo Clinic proceedings Vol. 94; no. 5; pp. 748 - 750
Main Author Molitoris, Bruce A.
Format Journal Article
LanguageEnglish
Published England Elsevier Inc 01.05.2019
Frontline Medical Communications Inc
Elsevier Limited
Subjects
Online AccessGet full text
ISSN0025-6196
1942-5546
1942-5546
DOI10.1016/j.mayocp.2019.03.017

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Abstract [...]many individuals donating a kidney for transplant have less than a 0.3 mg/dL increase in their serum creatinine level (the increment in serum creatinine used by the AKIN to diagnose AKI), even though they have lost one-half of their total kidney function. [...]loss of up to 50% of total kidney function in these patients would not have been registered as AKI. [...]one use for the novel biomarkers is to identify "subclinical AKI" as a serum creatinine-negative but biomarker-positive diagnosis, indicating the presence of renal tubular epithelial cell injury. [...]use of these biomarkers is expensive, and this must be considered before considering routine surveillance protocols. [...]attention has turned to other approaches to identify patients with a high probability of AKI and alert the physician to its likely occurrence. [...]the model was computer-calculated, which thus provided near real-time information for surveillance purposes without physician input or time.
AbstractList [...]many individuals donating a kidney for transplant have less than a 0.3 mg/dL increase in their serum creatinine level (the increment in serum creatinine used by the AKIN to diagnose AKI), even though they have lost one-half of their total kidney function. [...]loss of up to 50% of total kidney function in these patients would not have been registered as AKI. [...]one use for the novel biomarkers is to identify "subclinical AKI" as a serum creatinine-negative but biomarker-positive diagnosis, indicating the presence of renal tubular epithelial cell injury. [...]use of these biomarkers is expensive, and this must be considered before considering routine surveillance protocols. [...]attention has turned to other approaches to identify patients with a high probability of AKI and alert the physician to its likely occurrence. [...]the model was computer-calculated, which thus provided near real-time information for surveillance purposes without physician input or time.
Audience Academic
Author Molitoris, Bruce A.
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SubjectTerms Acute kidney failure
Analysis
Artificial intelligence
Biological markers
Biomarkers
Care and treatment
Cell cycle
Cell injury
Creatinine
Critical care medicine
Diagnosis
Epithelial cells
Hospital patients
Hospitals
Intelligence gathering
Intensive care
Kidneys
Laboratories
Learning algorithms
Machine learning
Medical diagnosis
Mortality
Nephrology
Patient monitoring equipment
Patients
Physiologic monitoring
Risk factors
Studies
Surveillance
Technology application
Urine
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Title Beyond Biomarkers: Machine Learning in Diagnosing Acute Kidney Injury
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