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Updated: Feb 3, 2026

Assessment of Vascular Function in Patients With Chronic Kidney Disease
Published on: June 16, 2014
Genomic approaches in the search for molecular biomarkers in chronic kidney disease
M Cañadas-Garre1, K Anderson2, J McGoldrick2
1Epidemiology and Public Health Research Group, Centre for Public Health, Belfast City Hospital, Queen's University of Belfast, c/o University Floor, Level A, Tower Block, Lisburn Road, Belfast, BT9 7AB, Northern Ireland, UK. m.canadasgarre@qub.ac.uk.
Insights
New genomic biomarkers show promise for improving chronic kidney disease (CKD) diagnosis and prognosis. Research highlights genes like UMOD, SHROOM3, and ELMO1, offering potential beyond current methods for detecting kidney disease.
Area of Science:
- Nephrology
- Genomics
- Biomarker Discovery
Background:
- Chronic kidney disease (CKD) is a significant global health issue, particularly affecting older adults and often linked to diabetes and hypertension.
- Current CKD biomarkers, such as estimated glomerular filtration rate (eGFR), have limitations in early detection and specific populations.
- There is a critical need for novel, non-invasive biomarkers to enhance CKD diagnosis, prognosis, and treatment strategies.
Purpose of the Study:
- To review recent human studies identifying genomic biomarkers for CKD.
- To assess the potential of genetic, epigenetic, and transcriptomic approaches in kidney disease research.
- To highlight key genes associated with CKD and renal traits.
Main Methods:
- Systematic review of human studies from the last decade focusing on genomic biomarkers for CKD.
- Analysis of studies investigating genetic, epigenetic, and transcriptomic markers.
- Identification of genes strongly associated with renal diseases and kidney function parameters.
Main Results:
- Several genes, including UMOD, SHROOM3, and ELMO1, demonstrate strong associations with renal diseases and traits like eGFR and serum creatinine.
- The utility of epigenetic and transcriptomic biomarkers in CKD remains an area for further investigation.
- Combining multiple biomarkers, including genomic and epigenomic markers, may offer a more comprehensive understanding of kidney diseases.
Conclusions:
- Genomic biomarkers represent a promising avenue for advancing CKD diagnostics and prognostics.
- Further research into epigenetic and transcriptomic markers is warranted.
- Integrated biomarker classifiers hold potential for a more complete assessment of kidney health.
Background:
Chronic kidney disease (CKD) is recognised as a global public health problem, more prevalent in older persons and associated with multiple co-morbidities. Diabetes mellitus and hypertension are common aetiologies for CKD, but IgA glomerulonephritis, membranous glomerulonephritis, lupus nephritis and autosomal dominant polycystic kidney disease are also common causes of CKD.
Main Body:
Conventional biomarkers for CKD involving the use of estimated glomerular filtration rate (eGFR) derived from four variables (serum creatinine, age, gender and ethnicity) are recommended by clinical guidelines for the evaluation, classification, and stratification of CKD. However, these clinical biomarkers present some limitations, especially for early stages of CKD, elderly individuals, extreme body mass index values (serum creatinine), or are influenced by inflammation, steroid treatment and thyroid dysfunction (serum cystatin C). There is therefore a need to identify additional non-invasive biomarkers that are useful in clinical practice to help improve CKD diagnosis, inform prognosis and guide therapeutic management.
Conclusion:
CKD is a multifactorial disease with associated genetic and environmental risk factors. Hence, many studies have employed genetic, epigenetic and transcriptomic approaches to identify biomarkers for kidney disease. In this review, we have summarised the most important studies in humans investigating genomic biomarkers for CKD in the last decade. Several genes, including UMOD, SHROOM3 and ELMO1 have been strongly associated with renal diseases, and some of their traits, such as eGFR and serum creatinine. The role of epigenetic and transcriptomic biomarkers in CKD and related diseases is still unclear. The combination of multiple biomarkers into classifiers, including genomic, and/or epigenomic, may give a more complete picture of kidney diseases.
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