Literature DB >> 24085853

Quantitative apical membrane proteomics reveals vasopressin-induced actin dynamics in collecting duct cells.

Chin-San Loo1, Cheng-Wei Chen, Po-Jen Wang, Pei-Yu Chen, Shu-Yu Lin, Kay-Hooi Khoo, Robert A Fenton, Mark A Knepper, Ming-Jiun Yu.   

Abstract

In kidney collecting duct cells, filamentous actin (F-actin) depolymerization is a critical step in vasopressin-induced trafficking of aquaporin-2 to the apical plasma membrane. However, the molecular components of this response are largely unknown. Using stable isotope-based quantitative protein mass spectrometry and surface biotinylation, we identified 100 proteins that showed significant abundance changes in the apical plasma membrane of mouse cortical collecting duct cells in response to vasopressin. Fourteen of these proteins are involved in actin cytoskeleton regulation, including actin itself, 10 actin-associated proteins, and 3 regulatory proteins. Identified were two integral membrane proteins (Clmn, Nckap1) and one actin-binding protein (Mpp5) that link F-actin to the plasma membrane, five F-actin end-binding proteins (Arpc2, Arpc4, Gsn, Scin, and Capzb) involved in F-actin reorganization, and two actin adaptor proteins (Dbn1, Lasp1) that regulate actin cytoskeleton organization. There were also protease (Capn1), protein kinase (Cdc42bpb), and Rho guanine nucleotide exchange factor 2 (Arhgef2) that mediate signal-induced F-actin changes. Based on these findings, we devised a live-cell imaging method to observe vasopressin-induced F-actin dynamics in polarized mouse cortical collecting duct cells. In response to vasopressin, F-actin gradually disappeared near the center of the apical plasma membrane while consolidating laterally near the tight junction. This F-actin peripheralization was blocked by calcium ion chelation. Vasopressin-induced apical aquaporin-2 trafficking and forskolin-induced water permeability increase were blocked by F-actin disruption. In conclusion, we identified a vasopressin-regulated actin network potentially responsible for vasopressin-induced apical F-actin dynamics that could explain regulation of apical aquaporin-2 trafficking and water permeability increase.

Entities:  

Keywords:  AQP2; LC-MS/MS; SILAC; dDAVP; proteome

Mesh:

Substances:

Year:  2013        PMID: 24085853      PMCID: PMC3800992          DOI: 10.1073/pnas.1309219110

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  60 in total

1.  An inhibitory role of Rho in the vasopressin-mediated translocation of aquaporin-2 into cell membranes of renal principal cells.

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Journal:  J Biol Chem       Date:  2001-02-13       Impact factor: 5.157

2.  Actin remodeling requires ERM function to facilitate AQP2 apical targeting.

Authors:  Grazia Tamma; Enno Klussmann; Johannes Oehlke; Eberhard Krause; Walter Rosenthal; Maria Svelto; Giovanna Valenti
Journal:  J Cell Sci       Date:  2005-07-26       Impact factor: 5.285

3.  Nonmuscle myosin II moves in new directions.

Authors:  Mary Anne Conti; Robert S Adelstein
Journal:  J Cell Sci       Date:  2008-01-01       Impact factor: 5.285

4.  Cold-induced microtubule disruption and relocalization of membrane proteins in kidney epithelial cells.

Authors:  S Breton; D Brown
Journal:  J Am Soc Nephrol       Date:  1998-02       Impact factor: 10.121

5.  Proteomic profiling of nuclei from native renal inner medullary collecting duct cells using LC-MS/MS.

Authors:  Dmitry Tchapyjnikov; Yuedan Li; Trairak Pisitkun; Jason D Hoffert; Ming-Jiun Yu; Mark A Knepper
Journal:  Physiol Genomics       Date:  2009-12-08       Impact factor: 3.107

6.  PALS1 specifies the localization of ezrin to the apical membrane of gastric parietal cells.

Authors:  Xinwang Cao; Xia Ding; Zhen Guo; Rihong Zhou; Fengsong Wang; Fei Long; Fang Wu; Feng Bi; Qichen Wang; Daiming Fan; John G Forte; Maikun Teng; Xuebiao Yao
Journal:  J Biol Chem       Date:  2005-01-27       Impact factor: 5.157

7.  Calpain-mediated AQP2 proteolysis in inner medullary collecting duct.

Authors:  Dechu P Puliyanda; Donald T Ward; Michelle A Baum; Timothy G Hammond; H William Harris
Journal:  Biochem Biophys Res Commun       Date:  2003-03-28       Impact factor: 3.575

8.  Vasopressin: possible role of microtubules and microfilaments in its action.

Authors:  A Taylor; M Mamelak; E Reaven; R Maffly
Journal:  Science       Date:  1973-07-27       Impact factor: 47.728

9.  Differential effects of aldosterone and vasopressin on chloride fluxes in transimmortalized mouse cortical collecting duct cells.

Authors:  J Duong Van Huyen; M Bens; A Vandewalle
Journal:  J Membr Biol       Date:  1998-07-01       Impact factor: 1.843

10.  Drebrin attenuates the interaction between actin and myosin-V.

Authors:  Ryoki Ishikawa; Kaoru Katoh; Ayumi Takahashi; Ce Xie; Koushi Oseki; Michitoshi Watanabe; Michihiro Igarashi; Akio Nakamura; Kazuhiro Kohama
Journal:  Biochem Biophys Res Commun       Date:  2007-05-25       Impact factor: 3.575

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  31 in total

1.  Functional roles of MMP14 and MMP15 in early postnatal mammary gland development.

Authors:  Tamar Y Feinberg; R Grant Rowe; Thomas L Saunders; Stephen J Weiss
Journal:  Development       Date:  2016-09-15       Impact factor: 6.868

2.  Data integration in physiology using Bayes' rule and minimum Bayes' factors: deubiquitylating enzymes in the renal collecting duct.

Authors:  Zhe Xue; Jia-Xu Chen; Yue Zhao; Barbara Medvar; Mark A Knepper
Journal:  Physiol Genomics       Date:  2016-12-30       Impact factor: 3.107

3.  AKAP220 manages apical actin networks that coordinate aquaporin-2 location and renal water reabsorption.

Authors:  Jennifer L Whiting; Leah Ogier; Katherine A Forbush; Paula Bucko; Janani Gopalan; Ole-Morten Seternes; Lorene K Langeberg; John D Scott
Journal:  Proc Natl Acad Sci U S A       Date:  2016-07-11       Impact factor: 11.205

4.  BIG: a large-scale data integration tool for renal physiology.

Authors:  Yue Zhao; Chin-Rang Yang; Viswanathan Raghuram; Jaya Parulekar; Mark A Knepper
Journal:  Am J Physiol Renal Physiol       Date:  2016-06-08

5.  Ankyrin G Expression Regulates Apical Delivery of the Epithelial Sodium Channel (ENaC).

Authors:  Christine A Klemens; Robert S Edinger; Lindsay Kightlinger; Xiaoning Liu; Michael B Butterworth
Journal:  J Biol Chem       Date:  2016-11-28       Impact factor: 5.157

6.  Vasopressin-induced serine 269 phosphorylation reduces Sipa1l1 (signal-induced proliferation-associated 1 like 1)-mediated aquaporin-2 endocytosis.

Authors:  Po-Jen Wang; Shu-Ting Lin; Shao-Hsuan Liu; Kuang-Ting Kuo; Chun-Hua Hsu; Mark A Knepper; Ming-Jiun Yu
Journal:  J Biol Chem       Date:  2017-03-23       Impact factor: 5.157

7.  Activation of the metabolic sensor AMP-activated protein kinase inhibits aquaporin-2 function in kidney principal cells.

Authors:  Mohammad M Al-Bataineh; Hui Li; Kazuhiro Ohmi; Fan Gong; Allison L Marciszyn; Sajid Naveed; Xiaoqing Zhu; Dietbert Neumann; Qi Wu; Lei Cheng; Robert A Fenton; Núria M Pastor-Soler; Kenneth R Hallows
Journal:  Am J Physiol Renal Physiol       Date:  2016-08-17

8.  ILK and cytoskeletal architecture: an important determinant of AQP2 recycling and subsequent entry into the exocytotic pathway.

Authors:  Fahmy A Mamuya; Jose Luis Cano-Peñalver; Wei Li; Diego Rodriguez Puyol; Manuel Rodriguez Puyol; Dennis Brown; Sergio de Frutos; Hua Ann Jenny Lu
Journal:  Am J Physiol Renal Physiol       Date:  2016-10-19

Review 9.  Molecular mechanisms regulating aquaporin-2 in kidney collecting duct.

Authors:  Hyun Jun Jung; Tae-Hwan Kwon
Journal:  Am J Physiol Renal Physiol       Date:  2016-10-19

10.  Regulation of the Water Channel Aquaporin-2 via 14-3-3θ and -ζ.

Authors:  Hanne B Moeller; Joachim Slengerik-Hansen; Takwa Aroankins; Mette Assentoft; Nanna MacAulay; Soeren K Moestrup; Vivek Bhalla; Robert A Fenton
Journal:  J Biol Chem       Date:  2015-12-08       Impact factor: 5.157

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