Literature DB >> 28615248

The transcriptome of the Didelphis virginiana opossum kidney OK proximal tubule cell line.

Megan L Eshbach1, Rahil Sethi2, Raghunandan Avula2, Janette Lamb3, Deborah J Hollingshead3, David N Finegold4, Joseph D Locker5, Uma R Chandran2, Ora A Weisz6.   

Abstract

The OK cell line derived from the kidney of a female opossum Didelphis virginiana has proven to be a useful model in which to investigate the unique regulation of ion transport and membrane trafficking mechanisms in the proximal tubule (PT). Sequence data and comparison of the transcriptome of this cell line to eutherian mammal PTs would further broaden the utility of this culture model. However, the genomic sequence for D. virginiana is not available and although a draft genome sequence for the opossum Monodelphis domestica (sequenced in 2012 by the Broad Institute) exists, transcripts sequenced from both species show significant divergence. The M. domestica sequence is not highly annotated, and the majority of transcripts are predicted rather than experimentally validated. Using deep RNA sequencing of the D. virginiana OK cell line, we characterized its transcriptome via de novo transcriptome assembly and alignment to the M. domestica genome. The quality of the de novo assembled transcriptome was assessed by the extent of homology to sequences in nucleotide and protein databases. Gene expression levels in the OK cell line, from both the de novo transcriptome and genes aligned to the M. domestica genome, were compared with publicly available rat kidney nephron segment expression data. Our studies demonstrate the expression in OK cells of numerous PT-specific ion transporters and other key proteins relevant for rodent and human PT function. Additionally, the sequence and expression data reported here provide an important resource for genetic manipulation and other studies on PT cell function using these cells.
Copyright © 2017 the American Physiological Society.

Entities:  

Keywords:  endocytosis; ion transport; opossum; proximal tubule; transcriptome

Mesh:

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Year:  2017        PMID: 28615248      PMCID: PMC5625107          DOI: 10.1152/ajprenal.00228.2017

Source DB:  PubMed          Journal:  Am J Physiol Renal Physiol        ISSN: 1522-1466


  39 in total

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Journal:  Am J Physiol Renal Physiol       Date:  2010-04-28

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2.  Shear stress and oxygen availability drive differential changes in opossum kidney proximal tubule cell metabolism and endocytosis.

Authors:  Qidong Ren; Megan L Gliozzi; Natalie L Rittenhouse; Lia R Edmunds; Youssef Rbaibi; Joseph D Locker; Amanda C Poholek; Michael J Jurczak; Catherine J Baty; Ora A Weisz
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3.  Cubilin-, megalin-, and Dab2-dependent transcription revealed by CRISPR/Cas9 knockout in kidney proximal tubule cells.

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8.  Transcriptional Programs Driving Shear Stress-Induced Differentiation of Kidney Proximal Tubule Cells in Culture.

Authors:  Hyun Jung Park; Zhenjiang Fan; Yulong Bai; Qidong Ren; Youssef Rbaibi; Kimberly R Long; Megan L Gliozzi; Natalie Rittenhouse; Joseph D Locker; Amanda C Poholek; Ora A Weisz
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  8 in total

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