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SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function

SLCO1B1 (solute carrier organic anion transporter family member 1B1) is an important transmembrane hepatic uptake transporter. Genetic variants in the SLCO1B1 gene have been associated with altered protein folding, resulting in protein degradation and decreased transporter activity. Next-generation...

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Autores principales: Zhang, Lingxin, Sarangi, Vivekananda, Ho, Ming-Fen, Moon, Irene, Kalari, Krishna R., Wang, Liewei, Weinshilboum, Richard M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Pharmacology and Experimental Therapeutics 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8042483/
https://www.ncbi.nlm.nih.gov/pubmed/33658230
http://dx.doi.org/10.1124/dmd.120.000264
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author Zhang, Lingxin
Sarangi, Vivekananda
Ho, Ming-Fen
Moon, Irene
Kalari, Krishna R.
Wang, Liewei
Weinshilboum, Richard M.
author_facet Zhang, Lingxin
Sarangi, Vivekananda
Ho, Ming-Fen
Moon, Irene
Kalari, Krishna R.
Wang, Liewei
Weinshilboum, Richard M.
author_sort Zhang, Lingxin
collection PubMed
description SLCO1B1 (solute carrier organic anion transporter family member 1B1) is an important transmembrane hepatic uptake transporter. Genetic variants in the SLCO1B1 gene have been associated with altered protein folding, resulting in protein degradation and decreased transporter activity. Next-generation sequencing (NGS) of pharmacogenes is being applied increasingly to associate variation in drug response with genetic sequence variants. However, it is difficult to link variants of unknown significance with functional phenotypes using “one-at-a-time” functional systems. Deep mutational scanning (DMS) using a “landing pad cell–based system” is a high-throughput technique designed to analyze hundreds of gene open reading frame (ORF) missense variants in a parallel and scalable fashion. We have applied DMS to analyze 137 missense variants in the SLCO1B1 ORF obtained from the Exome Aggregation Consortium project. ORFs containing these variants were fused to green fluorescent protein and were integrated into “landing pad” cells. Florescence-activated cell sorting was performed to separate the cells into four groups based on fluorescence readout indicating protein expression at the single cell level. NGS was then performed and SLCO1B1 variant frequencies were used to determine protein abundance. We found that six variants not previously characterized functionally displayed less than 25% and another 12 displayed approximately 50% of wild-type protein expression. These results were then functionally validated by transporter studies. Severely damaging variants identified by DMS may have clinical relevance for SLCO1B1-dependent drug transport, but we need to exercise caution since the relatively small number of severely damaging variants identified raise questions with regard to the application of DMS to intrinsic membrane proteins such as organic anion transporter protein 1B1. SIGNIFICANCE STATEMENT: The functional implications of a large numbers of open reading frame (ORF) “variants of unknown significance” (VUS) in transporter genes have not been characterized. This study applied deep mutational scanning to determine the functional effects of VUS that have been observed in the ORF of SLCO1B1(solute carrier organic anion transporter family member 1B1). Several severely damaging variants were identified, studied, and validated. These observations have implications for both the application of deep mutational scanning to intrinsic membrane proteins and for the clinical effect of drugs and endogenous compounds transported by SLCO1B1.
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spelling pubmed-80424832021-05-01 SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function Zhang, Lingxin Sarangi, Vivekananda Ho, Ming-Fen Moon, Irene Kalari, Krishna R. Wang, Liewei Weinshilboum, Richard M. Drug Metab Dispos Articles SLCO1B1 (solute carrier organic anion transporter family member 1B1) is an important transmembrane hepatic uptake transporter. Genetic variants in the SLCO1B1 gene have been associated with altered protein folding, resulting in protein degradation and decreased transporter activity. Next-generation sequencing (NGS) of pharmacogenes is being applied increasingly to associate variation in drug response with genetic sequence variants. However, it is difficult to link variants of unknown significance with functional phenotypes using “one-at-a-time” functional systems. Deep mutational scanning (DMS) using a “landing pad cell–based system” is a high-throughput technique designed to analyze hundreds of gene open reading frame (ORF) missense variants in a parallel and scalable fashion. We have applied DMS to analyze 137 missense variants in the SLCO1B1 ORF obtained from the Exome Aggregation Consortium project. ORFs containing these variants were fused to green fluorescent protein and were integrated into “landing pad” cells. Florescence-activated cell sorting was performed to separate the cells into four groups based on fluorescence readout indicating protein expression at the single cell level. NGS was then performed and SLCO1B1 variant frequencies were used to determine protein abundance. We found that six variants not previously characterized functionally displayed less than 25% and another 12 displayed approximately 50% of wild-type protein expression. These results were then functionally validated by transporter studies. Severely damaging variants identified by DMS may have clinical relevance for SLCO1B1-dependent drug transport, but we need to exercise caution since the relatively small number of severely damaging variants identified raise questions with regard to the application of DMS to intrinsic membrane proteins such as organic anion transporter protein 1B1. SIGNIFICANCE STATEMENT: The functional implications of a large numbers of open reading frame (ORF) “variants of unknown significance” (VUS) in transporter genes have not been characterized. This study applied deep mutational scanning to determine the functional effects of VUS that have been observed in the ORF of SLCO1B1(solute carrier organic anion transporter family member 1B1). Several severely damaging variants were identified, studied, and validated. These observations have implications for both the application of deep mutational scanning to intrinsic membrane proteins and for the clinical effect of drugs and endogenous compounds transported by SLCO1B1. The American Society for Pharmacology and Experimental Therapeutics 2021-05 2021-05 /pmc/articles/PMC8042483/ /pubmed/33658230 http://dx.doi.org/10.1124/dmd.120.000264 Text en Copyright © 2021 by The Author(s) https://creativecommons.org/licenses/by-nc/4.0/This is an open access article distributed under the CC BY-NC Attribution 4.0 International license (https://creativecommons.org/licenses/by-nc/4.0/) .
spellingShingle Articles
Zhang, Lingxin
Sarangi, Vivekananda
Ho, Ming-Fen
Moon, Irene
Kalari, Krishna R.
Wang, Liewei
Weinshilboum, Richard M.
SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function
title SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function
title_full SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function
title_fullStr SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function
title_full_unstemmed SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function
title_short SLCO1B1: Application and Limitations of Deep Mutational Scanning for Genomic Missense Variant Function
title_sort slco1b1: application and limitations of deep mutational scanning for genomic missense variant function
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8042483/
https://www.ncbi.nlm.nih.gov/pubmed/33658230
http://dx.doi.org/10.1124/dmd.120.000264
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