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The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes

Dynamin is an endocytic protein that functions in vesicle formation by scission of invaginated membranes. Dynamin maintains the structure of foot processes in glomerular podocytes by directly and indirectly interacting with actin filaments. However, molecular mechanisms underlying dynamin-mediated a...

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Autores principales: Hamasaki, Eriko, Wakita, Natsuki, Yasuoka, Hiroki, Nagaoka, Hikaru, Morita, Masayuki, Takashima, Eizo, Uchihashi, Takayuki, Takeda, Tetsuya, Abe, Tadashi, Lee, Ji-Won, Iimura, Tadahiro, Saleem, Moin A, Ogo, Naohisa, Asai, Akira, Narita, Akihiro, Takei, Kohji, Yamada, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9127447/
https://www.ncbi.nlm.nih.gov/pubmed/35620056
http://dx.doi.org/10.3389/fcell.2022.884509
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author Hamasaki, Eriko
Wakita, Natsuki
Yasuoka, Hiroki
Nagaoka, Hikaru
Morita, Masayuki
Takashima, Eizo
Uchihashi, Takayuki
Takeda, Tetsuya
Abe, Tadashi
Lee, Ji-Won
Iimura, Tadahiro
Saleem, Moin A
Ogo, Naohisa
Asai, Akira
Narita, Akihiro
Takei, Kohji
Yamada, Hiroshi
author_facet Hamasaki, Eriko
Wakita, Natsuki
Yasuoka, Hiroki
Nagaoka, Hikaru
Morita, Masayuki
Takashima, Eizo
Uchihashi, Takayuki
Takeda, Tetsuya
Abe, Tadashi
Lee, Ji-Won
Iimura, Tadahiro
Saleem, Moin A
Ogo, Naohisa
Asai, Akira
Narita, Akihiro
Takei, Kohji
Yamada, Hiroshi
author_sort Hamasaki, Eriko
collection PubMed
description Dynamin is an endocytic protein that functions in vesicle formation by scission of invaginated membranes. Dynamin maintains the structure of foot processes in glomerular podocytes by directly and indirectly interacting with actin filaments. However, molecular mechanisms underlying dynamin-mediated actin regulation are largely unknown. Here, biochemical and cell biological experiments were conducted to uncover how dynamin modulates interactions between membranes and actin in human podocytes. Actin-bundling, membrane tubulating, and GTPase activities of dynamin were examined in vitro using recombinant dynamin 2-wild-type (WT) or dynamin 2-K562E, which is a mutant found in Charcot-Marie-Tooth patients. Dynamin 2-WT and dynamin 2-K562E led to the formation of prominent actin bundles with constant diameters. Whereas liposomes incubated with dynamin 2-WT resulted in tubule formation, dynamin 2-K562E reduced tubulation. Actin filaments and liposomes stimulated dynamin 2-WT GTPase activity by 6- and 20-fold, respectively. Actin-filaments, but not liposomes, stimulated dynamin 2-K562E GTPase activity by 4-fold. Self-assembly-dependent GTPase activity of dynamin 2-K562E was reduced to one-third compared to that of dynamin 2-WT. Incubation of liposomes and actin with dynamin 2-WT led to the formation of thick actin bundles, which often bound to liposomes. The interaction between lipid membranes and actin bundles by dynamin 2-K562E was lower than that by dynamin 2-WT. Dynamin 2-WT partially colocalized with stress fibers and actin bundles based on double immunofluorescence of human podocytes. Dynamin 2-K562E expression resulted in decreased stress fiber density and the formation of aberrant actin clusters. Dynamin 2-K562E colocalized with α-actinin-4 in aberrant actin clusters. Reformation of stress fibers after cytochalasin D-induced actin depolymerization and washout was less effective in dynamin 2-K562E-expressing cells than that in dynamin 2-WT. Bis-T-23, a dynamin self-assembly enhancer, was unable to rescue the decreased focal adhesion numbers and reduced stress fiber density induced by dynamin 2-K562E expression. These results suggest that the low affinity of the K562E mutant for lipid membranes, and atypical self-assembling properties, lead to actin disorganization in HPCs. Moreover, lipid-binding and self-assembly of dynamin 2 along actin filaments are required for podocyte morphology and functions. Finally, dynamin 2-mediated interactions between actin and membranes are critical for actin bundle formation in HPCs.
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spelling pubmed-91274472022-05-25 The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes Hamasaki, Eriko Wakita, Natsuki Yasuoka, Hiroki Nagaoka, Hikaru Morita, Masayuki Takashima, Eizo Uchihashi, Takayuki Takeda, Tetsuya Abe, Tadashi Lee, Ji-Won Iimura, Tadahiro Saleem, Moin A Ogo, Naohisa Asai, Akira Narita, Akihiro Takei, Kohji Yamada, Hiroshi Front Cell Dev Biol Cell and Developmental Biology Dynamin is an endocytic protein that functions in vesicle formation by scission of invaginated membranes. Dynamin maintains the structure of foot processes in glomerular podocytes by directly and indirectly interacting with actin filaments. However, molecular mechanisms underlying dynamin-mediated actin regulation are largely unknown. Here, biochemical and cell biological experiments were conducted to uncover how dynamin modulates interactions between membranes and actin in human podocytes. Actin-bundling, membrane tubulating, and GTPase activities of dynamin were examined in vitro using recombinant dynamin 2-wild-type (WT) or dynamin 2-K562E, which is a mutant found in Charcot-Marie-Tooth patients. Dynamin 2-WT and dynamin 2-K562E led to the formation of prominent actin bundles with constant diameters. Whereas liposomes incubated with dynamin 2-WT resulted in tubule formation, dynamin 2-K562E reduced tubulation. Actin filaments and liposomes stimulated dynamin 2-WT GTPase activity by 6- and 20-fold, respectively. Actin-filaments, but not liposomes, stimulated dynamin 2-K562E GTPase activity by 4-fold. Self-assembly-dependent GTPase activity of dynamin 2-K562E was reduced to one-third compared to that of dynamin 2-WT. Incubation of liposomes and actin with dynamin 2-WT led to the formation of thick actin bundles, which often bound to liposomes. The interaction between lipid membranes and actin bundles by dynamin 2-K562E was lower than that by dynamin 2-WT. Dynamin 2-WT partially colocalized with stress fibers and actin bundles based on double immunofluorescence of human podocytes. Dynamin 2-K562E expression resulted in decreased stress fiber density and the formation of aberrant actin clusters. Dynamin 2-K562E colocalized with α-actinin-4 in aberrant actin clusters. Reformation of stress fibers after cytochalasin D-induced actin depolymerization and washout was less effective in dynamin 2-K562E-expressing cells than that in dynamin 2-WT. Bis-T-23, a dynamin self-assembly enhancer, was unable to rescue the decreased focal adhesion numbers and reduced stress fiber density induced by dynamin 2-K562E expression. These results suggest that the low affinity of the K562E mutant for lipid membranes, and atypical self-assembling properties, lead to actin disorganization in HPCs. Moreover, lipid-binding and self-assembly of dynamin 2 along actin filaments are required for podocyte morphology and functions. Finally, dynamin 2-mediated interactions between actin and membranes are critical for actin bundle formation in HPCs. Frontiers Media S.A. 2022-05-10 /pmc/articles/PMC9127447/ /pubmed/35620056 http://dx.doi.org/10.3389/fcell.2022.884509 Text en Copyright © 2022 Hamasaki, Wakita, Yasuoka, Nagaoka, Morita, Takashima, Uchihashi, Takeda, Abe, Lee, Iimura, Saleem, Ogo, Asai, Narita, Takei and Yamada. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Hamasaki, Eriko
Wakita, Natsuki
Yasuoka, Hiroki
Nagaoka, Hikaru
Morita, Masayuki
Takashima, Eizo
Uchihashi, Takayuki
Takeda, Tetsuya
Abe, Tadashi
Lee, Ji-Won
Iimura, Tadahiro
Saleem, Moin A
Ogo, Naohisa
Asai, Akira
Narita, Akihiro
Takei, Kohji
Yamada, Hiroshi
The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes
title The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes
title_full The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes
title_fullStr The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes
title_full_unstemmed The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes
title_short The Lipid-Binding Defective Dynamin 2 Mutant in Charcot-Marie-Tooth Disease Impairs Proper Actin Bundling and Actin Organization in Glomerular Podocytes
title_sort lipid-binding defective dynamin 2 mutant in charcot-marie-tooth disease impairs proper actin bundling and actin organization in glomerular podocytes
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9127447/
https://www.ncbi.nlm.nih.gov/pubmed/35620056
http://dx.doi.org/10.3389/fcell.2022.884509
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