Literature DB >> 33672100

Integrin Regulation in Immunological and Cancerous Cells and Exosomes.

Zay Yar Soe1, Eun Jeong Park2, Motomu Shimaoka2.   

Abstract

Integrins represent the biologically and medically significant family of cell adhesion molecules that govern a wide range of normal physiology. The activities of integrins in cells are dynamically controlled via activation-dependent conformational changes regulated by the balance of intracellular activators, such as talin and kindlin, and inactivators, such as Shank-associated RH domain interactor (SHARPIN) and integrin cytoplasmic domain-associated protein 1 (ICAP-1). The activities of integrins are alternatively controlled by homotypic lateral association with themselves to induce integrin clustering and/or by heterotypic lateral engagement with tetraspanin and syndecan in the same cells to modulate integrin adhesiveness. It has recently emerged that integrins are expressed not only in cells but also in exosomes, important entities of extracellular vesicles secreted from cells. Exosomal integrins have received considerable attention in recent years, and they are clearly involved in determining the tissue distribution of exosomes, forming premetastatic niches, supporting internalization of exosomes by target cells and mediating exosome-mediated transfer of the membrane proteins and associated kinases to target cells. A growing body of evidence shows that tumor and immune cell exosomes have the ability to alter endothelial characteristics (proliferation, migration) and gene expression, some of these effects being facilitated by vesicle-bound integrins. As endothelial metabolism is now thought to play a key role in tumor angiogenesis, we also discuss how tumor cells and their exosomes pleiotropically modulate endothelial functions in the tumor microenvironment.

Entities:  

Keywords:  angiogenesis; endothelial metabolism; exosome; integrin; kindlin; talin

Mesh:

Substances:

Year:  2021        PMID: 33672100      PMCID: PMC7926977          DOI: 10.3390/ijms22042193

Source DB:  PubMed          Journal:  Int J Mol Sci        ISSN: 1422-0067            Impact factor:   5.923


  154 in total

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2.  Negative regulators of integrin activity.

Authors:  Jeroen Pouwels; Jonna Nevo; Teijo Pellinen; Jari Ylänne; Johanna Ivaska
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3.  Frontline Science: Kindlin-3 is essential for patrolling and phagocytosis functions of nonclassical monocytes during metastatic cancer surveillance.

Authors:  Paola M Marcovecchio; Yanfang Peipei Zhu; Richard N Hanna; Huy Q Dinh; Robert Tacke; Runpei Wu; Sara McArdle; Sophia Reynolds; Daniel J Araujo; Klaus Ley; Catherine C Hedrick
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4.  Exosomal αvβ6 integrin is required for monocyte M2 polarization in prostate cancer.

Authors:  Huimin Lu; Nicholas Bowler; Larry A Harshyne; D Craig Hooper; Shiv Ram Krishn; Senem Kurtoglu; Carmine Fedele; Qin Liu; Hsin-Yao Tang; Andrew V Kossenkov; William K Kelly; Kerith Wang; Rhonda B Kean; Paul H Weinreb; Lei Yu; Anindita Dutta; Paolo Fortina; Adam Ertel; Maria Stanczak; Flemming Forsberg; Dmitry I Gabrilovich; David W Speicher; Dario C Altieri; Lucia R Languino
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Authors:  Richard Wubbolts; Rachel S Leckie; Peter T M Veenhuizen; Guenter Schwarzmann; Wiebke Möbius; Joerg Hoernschemeyer; Jan-Willem Slot; Hans J Geuze; Willem Stoorvogel
Journal:  J Biol Chem       Date:  2003-01-07       Impact factor: 5.157

Review 6.  The tail of integrin activation.

Authors:  Nicholas J Anthis; Iain D Campbell
Journal:  Trends Biochem Sci       Date:  2011-01-06       Impact factor: 13.807

7.  Breast-cancer-secreted miR-122 reprograms glucose metabolism in premetastatic niche to promote metastasis.

Authors:  Miranda Y Fong; Weiying Zhou; Liang Liu; Aileen Y Alontaga; Manasa Chandra; Jonathan Ashby; Amy Chow; Sean Timothy Francis O'Connor; Shasha Li; Andrew R Chin; George Somlo; Melanie Palomares; Zhuo Li; Jacob R Tremblay; Akihiro Tsuyada; Guoqiang Sun; Michael A Reid; Xiwei Wu; Piotr Swiderski; Xiubao Ren; Yanhong Shi; Mei Kong; Wenwan Zhong; Yuan Chen; Shizhen Emily Wang
Journal:  Nat Cell Biol       Date:  2015-01-26       Impact factor: 28.824

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9.  M2 Macrophage-Derived Exosomes Facilitate HCC Metastasis by Transferring αM β2 Integrin to Tumor Cells.

Authors:  Jindao Wu; Wen Gao; Qiyun Tang; Yue Yu; Wei You; Zhengshan Wu; Ye Fan; Long Zhang; Chen Wu; Guoyong Han; Xueliang Zuo; Yao Zhang; Zhiqiang Chen; Wenzhou Ding; Xiangcheng Li; Fengming Lin; Hongbing Shen; Jinhai Tang; Yaqin Zhang; Xuehao Wang
Journal:  Hepatology       Date:  2021-04       Impact factor: 17.425

Review 10.  The tale of two talins - two isoforms to fine-tune integrin signalling.

Authors:  Rosemarie E Gough; Benjamin T Goult
Journal:  FEBS Lett       Date:  2018-05-18       Impact factor: 4.124

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  8 in total

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2.  Integrins and Epithelial-Mesenchymal Cooperation in the Tumor Microenvironment of Muscle-Invasive Lethal Cancers.

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Review 3.  Multifaceted roles of extracellular RNAs in different diseases.

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4.  Possible Role of Extracellular Vesicles in Hepatotoxicity of Acetaminophen.

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Review 6.  Exosome in Crosstalk between Inflammation and Angiogenesis: A Potential Therapeutic Strategy for Stroke.

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8.  One night of sleep deprivation induces release of small extracellular vesicles into circulation and promotes platelet activation by small EVs.

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  8 in total

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