Literature DB >> 30580573

Dynamic Actin Reorganization and Vav/Cdc42-Dependent Actin Polymerization Promote Macrophage Aggregated LDL (Low-Density Lipoprotein) Uptake and Catabolism.

Rajesh K Singh1, Abigail S Haka1, Priya Bhardwaj1, Xiaohui Zha2,3,4, Frederick R Maxfield1.   

Abstract

Objective- During atherosclerosis, LDLs (low-density lipoproteins) accumulate in the arteries, where they become modified, aggregated, and retained. Such deposits of aggregated LDL (agLDL) can be recognized by macrophages, which attempt to digest and clear them. AgLDL catabolism promotes internalization of cholesterol and foam cell formation, which leads to the progression of atherosclerosis. Therapeutic blockade of this process may delay disease progression. When macrophages interact with agLDL in vitro, they form a novel extracellular, hydrolytic compartment-the lysosomal synapse (LS)-aided by local actin polymerization to digest agLDL. Here, we investigated the specific regulators involved in actin polymerization during the formation of the LS. Approach and Results- We demonstrate in vivo that atherosclerotic plaque macrophages contacting agLDL deposits polymerize actin and form a compartment strikingly similar to those made in vitro. Live cell imaging revealed that macrophage cortical F-actin depolymerization is required for actin polymerization to support the formation of the LS. This depolymerization is cofilin-1 dependent. Using siRNA-mediated silencing, pharmacological inhibition, genetic knockout, and stable overexpression, we elucidate key roles for Cdc42 Rho GTPase and GEF (guanine nucleotide exchange factor) Vav in promoting actin polymerization during the formation of the LS and exclude a role for Rac1. Conclusions- These results highlight critical roles for dynamic macrophage F-actin rearrangement and polymerization via cofilin-1, Vav, and Cdc42 in LS formation, catabolism of agLDL, and foam cell formation. These proteins might represent therapeutic targets to treat atherosclerotic disease.

Entities:  

Keywords:  actins; arteries; atherosclerosis; foam cells; macrophages

Mesh:

Substances:

Year:  2019        PMID: 30580573      PMCID: PMC6344252          DOI: 10.1161/ATVBAHA.118.312087

Source DB:  PubMed          Journal:  Arterioscler Thromb Vasc Biol        ISSN: 1079-5642            Impact factor:   8.311


  57 in total

1.  Vav2 is an activator of Cdc42, Rac1, and RhoA.

Authors:  K Abe; K L Rossman; B Liu; K D Ritola; D Chiang; S L Campbell; K Burridge; C J Der
Journal:  J Biol Chem       Date:  2000-04-07       Impact factor: 5.157

Review 2.  Role of oxidative modifications in atherosclerosis.

Authors:  Roland Stocker; John F Keaney
Journal:  Physiol Rev       Date:  2004-10       Impact factor: 37.312

3.  Progranulin in the hematopoietic compartment protects mice from atherosclerosis.

Authors:  Andrew D Nguyen; Thi A Nguyen; Rajesh K Singh; Delphine Eberlé; Jiasheng Zhang; Jess Porter Abate; Anatalia Robles; Suneil Koliwad; Eric J Huang; Frederick R Maxfield; Tobias C Walther; Robert V Farese
Journal:  Atherosclerosis       Date:  2018-08-30       Impact factor: 5.162

4.  Macrophages create an acidic extracellular hydrolytic compartment to digest aggregated lipoproteins.

Authors:  Abigail S Haka; Inna Grosheva; Ethan Chiang; Adina R Buxbaum; Barbara A Baird; Lynda M Pierini; Frederick R Maxfield
Journal:  Mol Biol Cell       Date:  2009-10-07       Impact factor: 4.138

5.  Cdc42 participates in the regulation of ADF/cofilin and retinal growth cone filopodia by brain derived neurotrophic factor.

Authors:  Tsan-Ju Chen; Scott Gehler; Alisa E Shaw; James R Bamburg; Paul C Letourneau
Journal:  J Neurobiol       Date:  2006-02-05

6.  Ultrastructure of early lipid accumulation in ApoE-deficient mice.

Authors:  M Tamminen; G Mottino; J H Qiao; J L Breslow; J S Frank
Journal:  Arterioscler Thromb Vasc Biol       Date:  1999-04       Impact factor: 8.311

7.  Oxidized LDL in carotid plaques and plasma associates with plaque instability.

Authors:  Kyoko Nishi; Hiroyuki Itabe; Masaaki Uno; Keiko T Kitazato; Hidehisa Horiguchi; Kiyohito Shinno; Shinji Nagahiro
Journal:  Arterioscler Thromb Vasc Biol       Date:  2002-10-01       Impact factor: 8.311

8.  Rabbit aorta and human atherosclerotic lesions hydrolyze the sphingomyelin of retained low-density lipoprotein. Proposed role for arterial-wall sphingomyelinase in subendothelial retention and aggregation of atherogenic lipoproteins.

Authors:  S L Schissel; J Tweedie-Hardman; J H Rapp; G Graham; K J Williams; I Tabas
Journal:  J Clin Invest       Date:  1996-09-15       Impact factor: 14.808

Review 9.  Mammalian Rho GTPases: new insights into their functions from in vivo studies.

Authors:  Sarah J Heasman; Anne J Ridley
Journal:  Nat Rev Mol Cell Biol       Date:  2008-09       Impact factor: 94.444

10.  Cofilin phosphorylation and actin cytoskeletal dynamics regulated by rho- and Cdc42-activated LIM-kinase 2.

Authors:  T Sumi; K Matsumoto; Y Takai; T Nakamura
Journal:  J Cell Biol       Date:  1999-12-27       Impact factor: 10.539

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  11 in total

1.  The three members of the Vav family proteins form complexes that concur to foam cell formation and atherosclerosis.

Authors:  Rong Huang; Guo Guo; Liaoxun Lu; Rui Fu; Jing Luo; Zhuangzhuang Liu; Yanrong Gu; Wenyi Yang; Qianqian Zheng; Tianzhu Chao; Le He; Ying Wang; Zhiguo Niu; Hui Wang; Toby Lawrence; Marie Malissen; Bernard Malissen; Yinming Liang; Lichen Zhang
Journal:  J Lipid Res       Date:  2019-09-30       Impact factor: 5.922

2.  TLR4 (Toll-Like Receptor 4)-Dependent Signaling Drives Extracellular Catabolism of LDL (Low-Density Lipoprotein) Aggregates.

Authors:  Rajesh K Singh; Abigail S Haka; Arky Asmal; Valéria C Barbosa-Lorenzi; Inna Grosheva; Harvey F Chin; Yuquan Xiong; Timothy Hla; Frederick R Maxfield
Journal:  Arterioscler Thromb Vasc Biol       Date:  2019-10-10       Impact factor: 8.311

Review 3.  Lysosomal Acid Lipase in Lipid Metabolism and Beyond.

Authors:  Fang Li; Hanrui Zhang
Journal:  Arterioscler Thromb Vasc Biol       Date:  2019-05       Impact factor: 8.311

4.  The impact of PSRC1 overexpression on gene and transcript expression profiling in the livers of ApoE-/- mice fed a high-fat diet.

Authors:  Mengqiu Wei; Peng Li; Kai Guo
Journal:  Mol Cell Biochem       Date:  2019-12-14       Impact factor: 3.396

5.  High-density lipoprotein or cyclodextrin extraction of cholesterol from aggregated LDL reduces foam cell formation.

Authors:  Rajesh K Singh; Frederik W Lund; Abigail S Haka; Frederick R Maxfield
Journal:  J Cell Sci       Date:  2019-12-02       Impact factor: 5.285

Review 6.  Digestive exophagy: Phagocyte digestion of objects too large for phagocytosis.

Authors:  Frederick R Maxfield; Valeria C Barbosa-Lorenzi; Rajesh K Singh
Journal:  Traffic       Date:  2019-12-02       Impact factor: 6.215

Review 7.  Vav Proteins in Development of the Brain: A Potential Relationship to the Pathogenesis of Congenital Zika Syndrome?

Authors:  Aidan J Norbury; Lachlan A Jolly; Luke P Kris; Jillian M Carr
Journal:  Viruses       Date:  2022-02-14       Impact factor: 5.048

8.  Nε-Carboxymethyl-Lysine Negatively Regulates Foam Cell Migration via the Vav1/Rac1 Pathway.

Authors:  Zhengyang Bao; Lili Zhang; Lihua Li; Jinchuan Yan; Qiwen Pang; Zhen Sun; Yue Geng; Lele Jing; Chen Shao; Zhongqun Wang
Journal:  J Immunol Res       Date:  2020-02-28       Impact factor: 4.818

9.  Cysteamine inhibits lysosomal oxidation of low density lipoprotein in human macrophages and reduces atherosclerosis in mice.

Authors:  Yichuan Wen; Feroz Ahmad; Zahra Mohri; Peter D Weinberg; David S Leake
Journal:  Atherosclerosis       Date:  2019-09-26       Impact factor: 5.162

Review 10.  The Emerging Role of Rho Guanine Nucleotide Exchange Factors in Cardiovascular Disorders: Insights Into Atherosclerosis: A Mini Review.

Authors:  Mengqi Li; Qingzheng Jiao; Wenqiang Xin; Shulin Niu; Mingming Liu; Yanxin Song; Zengguang Wang; Xinyu Yang; Degang Liang
Journal:  Front Cardiovasc Med       Date:  2022-01-03
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