Enriched Single-Nucleus RNA-Sequencing Reveals Unique Attributes of Distal Convoluted Tubule Cells

Author:

Su Xiao-Tong1ORCID,Reyes Jeremiah V.12ORCID,Lackey Anne E.1,Demirci Hasan3ORCID,Bachmann Sebastian3ORCID,Maeoka Yujiro1ORCID,Cornelius Ryan J.1ORCID,McCormick James A.1ORCID,Yang Chao-Ling1,Jung Hyun Jun4ORCID,Welling Paul A.45ORCID,Nelson Jonathan W.1ORCID,Ellison David H.167ORCID

Affiliation:

1. Division of Hypertension and Nephrology, School of Medicine, Oregon Health & Science University, Portland, Oregon

2. Department of Biochemistry and Molecular Biology, College of Medicine, University of the Philippines Manila, Manila, Philippines

3. Department of Anatomy, Charité-Universitätsmedizin Berlin, Berlin, Germany

4. Division of Nephrology, Department of Medicine, Johns Hopkins University School of Medicine, Baltimore, Maryland

5. Department of Physiology, Johns Hopkins University School of Medicine, Baltimore, Maryland

6. Oregon Clinical and Translational Research Institute, Oregon Health & Science University, Portland, Oregon

7. Renal Section, VA Portland Healthcare System, Portland, Oregon

Abstract

Significance Statement High-resolution single-nucleus RNA-sequencing data indicate a clear separation between primary sites of calcium and magnesium handling within distal convoluted tubule (DCT). Both DCT1 and DCT2 express Slc12a3, but these subsegments serve distinctive functions, with more abundant magnesium-handling genes along DCT1 and more calcium-handling genes along DCT2. The data also provide insight into the plasticity of the distal nephron-collecting duct junction, formed from cells of separate embryonic origins. By focusing/changing gradients of gene expression, the DCT can morph into different physiological cell states on demand. Background The distal convoluted tubule (DCT) comprises two subsegments, DCT1 and DCT2, with different functional and molecular characteristics. The functional and molecular distinction between these segments, however, has been controversial. Methods To understand the heterogeneity within the DCT population with better clarity, we enriched for DCT nuclei by using a mouse line combining “Isolation of Nuclei Tagged in specific Cell Types” and sodium chloride cotransporter–driven inducible Cre recombinase. We sorted the fluorescently labeled DCT nuclei using Fluorescence-Activated Nucleus Sorting and performed single-nucleus transcriptomics. Results Among 25,183 DCT cells, 75% were from DCT1 and 25% were from DCT2. In addition, there was a small population (<1%) enriched in proliferation-related genes, such as Top2a, Cenpp, and Mki67. Although both DCT1 and DCT2 expressed sodium chloride cotransporter, magnesium transport genes were predominantly expressed along DCT1, whereas calcium, electrogenic sodium, and potassium transport genes were more abundant along DCT2. The transition between these two segments was gradual, with a transitional zone in which DCT1 and DCT2 cells were interspersed. The expression of the homeobox genes by DCT cells suggests that they develop along different trajectories. Conclusions Transcriptomic analysis of an enriched rare cell population using a genetically targeted approach clarifies the function and classification of distal cells. The DCT segment is short, can be separated into two subsegments that serve distinct functions, and is speculated to derive from different origins during development.

Funder

ASN Foundation for Kidney Research

National Institute of Diabetes and Digestive and Kidney Diseases

American Heart Association

Fondation Leducq

Publisher

Ovid Technologies (Wolters Kluwer Health)

Reference63 articles.

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2. Expression of the thiazide-sensitive Na-Cl cotransporter in rat and human kidney;Obermuller;Am J Physiol.,1995

3. Distribution of transcellular calcium and sodium transport pathways along mouse distal nephron;Loffing;Am J Physiol Renal Physiol.,2001

4. ENaC and ROMK channels in the connecting tubule regulate renal K+ secretion;Yang;J Gen Physiol.,2021

5. Cell profiling of mouse acute kidney injury reveals conserved cellular responses to injury;Kirita;Proc Natl Acad Sci U S A.,2020

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