Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1

Rho-kinase 1 (ROCK1) has been implicated in diverse metabolic functions throughout the body, with promising evidence identifying ROCK1 as a therapeutic target in diabetes and obesity. Considering these metabolic roles, several pharmacological inhibitors have been developed to elucidate the mechanism...

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Main Authors: Taylor Landry, Daniel Shookster, Hu Huang
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-02-01
Series:Frontiers in Endocrinology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fendo.2020.622581/full
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spelling doaj-d95aa8b9f90e4b5db848246f375905352021-02-09T05:20:35ZengFrontiers Media S.A.Frontiers in Endocrinology1664-23922021-02-011110.3389/fendo.2020.622581622581Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1Taylor Landry0Taylor Landry1Taylor Landry2Daniel Shookster3Daniel Shookster4Daniel Shookster5Hu Huang6Hu Huang7Hu Huang8Hu Huang9East Carolina Diabetes and Obesity Institute, East Carolina University, Greenville, NC, United StatesDepartment of Kinesiology, East Carolina University, Greenville, NC, United StatesHuman Performance Laboratory, College of Human Performance and Health, East Carolina University, Greenville, NC, United StatesEast Carolina Diabetes and Obesity Institute, East Carolina University, Greenville, NC, United StatesDepartment of Kinesiology, East Carolina University, Greenville, NC, United StatesHuman Performance Laboratory, College of Human Performance and Health, East Carolina University, Greenville, NC, United StatesEast Carolina Diabetes and Obesity Institute, East Carolina University, Greenville, NC, United StatesDepartment of Kinesiology, East Carolina University, Greenville, NC, United StatesHuman Performance Laboratory, College of Human Performance and Health, East Carolina University, Greenville, NC, United StatesDepartment of Physiology, East Carolina University, Greenville, NC, United StatesRho-kinase 1 (ROCK1) has been implicated in diverse metabolic functions throughout the body, with promising evidence identifying ROCK1 as a therapeutic target in diabetes and obesity. Considering these metabolic roles, several pharmacological inhibitors have been developed to elucidate the mechanisms underlying ROCK1 function. Y27632 and fasudil are two common ROCK1 inhibitors; however, they have varying non-specific selectivity to inhibit other AGC kinase subfamily members and whole-body pharmacological approaches lack tissue-specific insight. As a result, interpretation of studies with these inhibitors is difficult, and alternative approaches are needed to elucidate ROCK1’s tissue specific metabolic functions. Fortunately, recent technological advances utilizing molecular carriers or genetic manipulation have facilitated discovery of ROCK1’s tissue-specific mechanisms of action. In this article, we review the tissue-specific roles of ROCK1 in the regulation of energy balance and substrate utilization. We highlight prominent metabolic roles in liver, adipose, and skeletal muscle, in which ROCK1 regulates energy expenditure, glucose uptake, and lipid metabolism via inhibition of AMPK2α and paradoxical modulation of insulin signaling. Compared to ROCK1’s roles in peripheral tissues, we also describe contradictory functions of ROCK1 in the hypothalamus to increase energy expenditure and decrease food intake via leptin signaling. Furthermore, dysregulated ROCK1 activity in either of these tissues results in metabolic disease phenotypes. Overall, tissue-specific approaches have made great strides in deciphering the many critical metabolic functions of ROCK1 and, ultimately, may facilitate the development of novel treatments for metabolic disorders.https://www.frontiersin.org/articles/10.3389/fendo.2020.622581/fullRho-kinasemetabolismenergy balanceglucose metabolismlipid metabolism
collection DOAJ
language English
format Article
sources DOAJ
author Taylor Landry
Taylor Landry
Taylor Landry
Daniel Shookster
Daniel Shookster
Daniel Shookster
Hu Huang
Hu Huang
Hu Huang
Hu Huang
spellingShingle Taylor Landry
Taylor Landry
Taylor Landry
Daniel Shookster
Daniel Shookster
Daniel Shookster
Hu Huang
Hu Huang
Hu Huang
Hu Huang
Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1
Frontiers in Endocrinology
Rho-kinase
metabolism
energy balance
glucose metabolism
lipid metabolism
author_facet Taylor Landry
Taylor Landry
Taylor Landry
Daniel Shookster
Daniel Shookster
Daniel Shookster
Hu Huang
Hu Huang
Hu Huang
Hu Huang
author_sort Taylor Landry
title Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1
title_short Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1
title_full Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1
title_fullStr Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1
title_full_unstemmed Tissue-Specific Approaches Reveal Diverse Metabolic Functions of Rho-Kinase 1
title_sort tissue-specific approaches reveal diverse metabolic functions of rho-kinase 1
publisher Frontiers Media S.A.
series Frontiers in Endocrinology
issn 1664-2392
publishDate 2021-02-01
description Rho-kinase 1 (ROCK1) has been implicated in diverse metabolic functions throughout the body, with promising evidence identifying ROCK1 as a therapeutic target in diabetes and obesity. Considering these metabolic roles, several pharmacological inhibitors have been developed to elucidate the mechanisms underlying ROCK1 function. Y27632 and fasudil are two common ROCK1 inhibitors; however, they have varying non-specific selectivity to inhibit other AGC kinase subfamily members and whole-body pharmacological approaches lack tissue-specific insight. As a result, interpretation of studies with these inhibitors is difficult, and alternative approaches are needed to elucidate ROCK1’s tissue specific metabolic functions. Fortunately, recent technological advances utilizing molecular carriers or genetic manipulation have facilitated discovery of ROCK1’s tissue-specific mechanisms of action. In this article, we review the tissue-specific roles of ROCK1 in the regulation of energy balance and substrate utilization. We highlight prominent metabolic roles in liver, adipose, and skeletal muscle, in which ROCK1 regulates energy expenditure, glucose uptake, and lipid metabolism via inhibition of AMPK2α and paradoxical modulation of insulin signaling. Compared to ROCK1’s roles in peripheral tissues, we also describe contradictory functions of ROCK1 in the hypothalamus to increase energy expenditure and decrease food intake via leptin signaling. Furthermore, dysregulated ROCK1 activity in either of these tissues results in metabolic disease phenotypes. Overall, tissue-specific approaches have made great strides in deciphering the many critical metabolic functions of ROCK1 and, ultimately, may facilitate the development of novel treatments for metabolic disorders.
topic Rho-kinase
metabolism
energy balance
glucose metabolism
lipid metabolism
url https://www.frontiersin.org/articles/10.3389/fendo.2020.622581/full
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