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Published on: June 23, 2015
Rare genetic causes of complex kidney and urological diseases
Emily E Groopman1, Gundula Povysil2, David B Goldstein2
1Division of Nephrology, Columbia University College of Physicians and Surgeons, New York, NY, USA.
Insights
Chronic kidney disease (CKD) involves diverse genetic disorders, not a single entity. Advanced sequencing reveals genetic variations causing complex kidney conditions, enabling personalized medicine.
Area of Science:
- Nephrology
- Genetics
- Genomics
Background:
- Chronic kidney disease (CKD) is pathologically diverse, encompassing monogenic and polygenic causes.
- Rare inherited CKD exhibits varied phenotypes due to genetic factors like pleiotropy and variable expressivity.
Purpose of the Study:
- To investigate the genetic underpinnings of diverse CKD forms.
- To understand the contribution of genomic disorders and monogenic causes to complex CKD phenotypes.
- To explore genotype-phenotype relationships for personalized CKD management.
Main Methods:
- Utilized chromosomal microarray and massively parallel sequencing.
- Integrated genetic, bioinformatic, and functional studies.
- Analyzed large, diverse cohorts with genetic and phenotypic data.
Main Results:
- Genomic disorders and monogenic causes significantly contribute to CKD.
- Identified gene and allele variations linked to diverse nephropathy phenotypes.
- Found dual genetic diagnoses in at least 5% of genetically diagnosed CKD patients, indicating multilocus variation.
Conclusions:
- CKD is a spectrum of genetically distinct disorders.
- Advanced genomic technologies are crucial for identifying CKD causes.
- A comprehensive approach combining genetic and phenotypic data is essential for personalized CKD medicine.
Abstract:
Although often considered a single-entity, chronic kidney disease (CKD) comprises many pathophysiologically distinct disorders that result in persistently abnormal kidney structure and/or function, and encompass both monogenic and polygenic aetiologies. Rare inherited forms of CKD frequently span diverse phenotypes, reflecting genetic phenomena including pleiotropy, incomplete penetrance and variable expressivity. Use of chromosomal microarray and massively parallel sequencing technologies has revealed that genomic disorders and monogenic aetiologies contribute meaningfully to seemingly complex forms of CKD across different clinically defined subgroups and are characterized by high genetic and phenotypic heterogeneity. Investigations of prevalent genomic disorders in CKD have integrated genetic, bioinformatic and functional studies to pinpoint the genetic drivers underlying their renal and extra-renal manifestations, revealing both monogenic and polygenic mechanisms. Similarly, massively parallel sequencing-based analyses have identified gene- and allele-level variation that contribute to the clinically diverse phenotypes observed for many monogenic forms of nephropathy. Genome-wide sequencing studies suggest that dual genetic diagnoses are found in at least 5% of patients in whom a genetic cause of disease is identified, highlighting the fact that complex phenotypes can also arise from multilocus variation. A multifaceted approach that incorporates genetic and phenotypic data from large, diverse cohorts will help to elucidate the complex relationships between genotype and phenotype for different forms of CKD, supporting personalized medicine for individuals with kidney disease.
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