Alexander Bershadsky

About Alexander Bershadsky

Alexander Bershadsky, With an exceptional h-index of 70 and a recent h-index of 38 (since 2020), a distinguished researcher at Weizmann Institute of Science, specializes in the field of Actin Cytoskeleton, Integrin Adhesions, Microtubules, Cell Mechanosensitivity, Cell chirality.

His recent articles reflect a diverse array of research interests and contributions to the field:

Chirality in single cell and cell collectives as an emergent property of actin self-organization

Focal adhesions are controlled by microtubules through local contractility regulation

Actin polymerisation and crosslinking drive left-right asymmetry in single cell and cell collectives

Chiral growth of adherent filopodia

Forces in biology-Cell and developmental mechanobiology and its implications in disease-Volume II

Dual control of formin-nucleated actin assembly by the chromatin and ER in mouse oocytes

Application of piconewton forces to individual filopodia reveals mechanosensory role of L-type Ca2+ channels

Semaphorin3F reduces vascular endothelial and smooth muscle cell PI3K activation and decreases neointimal plaque formation

Alexander Bershadsky Information

University

Position

Mechanobiology Institute (MBI) NUS Singapore; Israel

Citations(all)

27350

Citations(since 2020)

6051

Cited By

23626

hIndex(all)

70

hIndex(since 2020)

38

i10Index(all)

124

i10Index(since 2020)

74

Email

University Profile Page

Google Scholar

Alexander Bershadsky Skills & Research Interests

Actin Cytoskeleton

Integrin Adhesions

Microtubules

Cell Mechanosensitivity

Cell chirality

Top articles of Alexander Bershadsky

Chirality in single cell and cell collectives as an emergent property of actin self-organization

Biophysical Journal

2024/2/8

Focal adhesions are controlled by microtubules through local contractility regulation

bioRxiv

2023/4/17

Actin polymerisation and crosslinking drive left-right asymmetry in single cell and cell collectives

Nature communications

2023/2/11

Chiral growth of adherent filopodia

Biophysical Journal

2023/9/19

Forces in biology-Cell and developmental mechanobiology and its implications in disease-Volume II

2022/12/1

Bipul R Acharya
Bipul R Acharya

H-Index: 12

Alexander Bershadsky
Alexander Bershadsky

H-Index: 36

Dual control of formin-nucleated actin assembly by the chromatin and ER in mouse oocytes

Current Biology

2022/9/26

Application of piconewton forces to individual filopodia reveals mechanosensory role of L-type Ca2+ channels

Biomaterials

2022/5/1

Semaphorin3F reduces vascular endothelial and smooth muscle cell PI3K activation and decreases neointimal plaque formation

bioRxiv

2022/3/24

Microtubules tune mechanosensitive cell responses

Nature Materials

2022/3

Aaron J Farrugia
Aaron J Farrugia

H-Index: 6

Alexander Bershadsky
Alexander Bershadsky

H-Index: 36

Crosstalk between myosin II and formin functions in the regulation of force generation and actomyosin dynamics in stress fibers

Cells & Development

2021/12/1

The formin inhibitor SMIFH2 inhibits members of the myosin superfamily

Journal of cell science

2021/4/15

Differential cellular responses to adhesive interactions with galectin-8-and fibronectin-coated substrates

Journal of Cell Science

2021/4/15

Mechanosensitive calcium signaling in filopodia

bioRxiv

2020/10/21

Mechanical regulation of formin-dependent actin polymerization

2020/6/1

Mechanical Force-Driven Registry of Non-Muscle Myosin in Fibroblasts

Biophysical Journal

2020/2/7

See List of Professors in Alexander Bershadsky University(Weizmann Institute of Science)

Co-Authors

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