Wolfgang Losert

Wolfgang Losert

University of Maryland, Baltimore

H-index: 50

North America-United States

About Wolfgang Losert

Wolfgang Losert, With an exceptional h-index of 50 and a recent h-index of 27 (since 2020), a distinguished researcher at University of Maryland, Baltimore, specializes in the field of Biological Physics, Nonlinear Dynamics.

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

Fractured columnar small-world functional network organization in volumes of L2/3 of mouse auditory cortex

Coupled Biomechanical and Ionic Excitability in Developing Neural Cell Networks

Compositions comprising textured patterns and methods of using the same

Filament displacement image analytics tool for use in investigating dynamics of dense microtubule networks

Understanding mechanisms of topography sensing in migrating cells through simulations of a coupled excitable network model

Decoding natural astrocyte rhythms: dynamic actin waves result from environmental sensing by primary rodent astrocytes

Elongate mineral particles (EMP) characteristics and mesothelioma: Summary and resolution for session I of the Monticello II conference

Assessing changes in microtubule network organization following exposure to radiofrequency waves

Wolfgang Losert Information

University

Position

Professor of Physics

Citations(all)

7742

Citations(since 2020)

2600

Cited By

6173

hIndex(all)

50

hIndex(since 2020)

27

i10Index(all)

116

i10Index(since 2020)

74

Email

University Profile Page

University of Maryland, Baltimore

Google Scholar

View Google Scholar Profile

Wolfgang Losert Skills & Research Interests

Biological Physics

Nonlinear Dynamics

Top articles of Wolfgang Losert

Title

Journal

Author(s)

Publication Date

Fractured columnar small-world functional network organization in volumes of L2/3 of mouse auditory cortex

PNAS nexus

Zac Bowen

Kelson Shilling-Scrivo

Wolfgang Losert

Patrick O Kanold

2024/2

Coupled Biomechanical and Ionic Excitability in Developing Neural Cell Networks

bioRxiv

Sylvester J Gates III

Phillip Alvarez

Kan Cao

Kate O’Neill

Wolfgang Losert

2023/2/15

Compositions comprising textured patterns and methods of using the same

2017/8/3

Filament displacement image analytics tool for use in investigating dynamics of dense microtubule networks

Physical Review E

Nicholas J Mennona

Anna Sedelnikova

Ibtissam Echchgadda

Wolfgang Losert

2023/9/29

Understanding mechanisms of topography sensing in migrating cells through simulations of a coupled excitable network model

Biophysical Journal

Parijat Banerjee

Qixin Yang

Wolfgang Losert

Peter N Devreotes

Pablo A Iglesias

2023/2/10

Decoding natural astrocyte rhythms: dynamic actin waves result from environmental sensing by primary rodent astrocytes

Advanced Biology

Kate M. O'Neill

Emanuela Saracino

Barbara Barile

Nicholas J. Mennona

Maria Grazia Mola

...

2023/1/29

Elongate mineral particles (EMP) characteristics and mesothelioma: Summary and resolution for session I of the Monticello II conference

Environmental research

Ann G Wylie

Andrey A Korchevskiy

Lucy Darnton

Eric J Chatfield

Julian Peto

...

2023/8/1

Assessing changes in microtubule network organization following exposure to radiofrequency waves

Nicholas J Mennona

Jody C Cantu

Anna V Sedelnikova

Wolfgang Losert

Ibtissam Echchgadda

2023/2/7

High fidelity configuration for two-photon SLM microscopy

2023/5/30

Excitable systems: A new perspective on the cellular impact of elongate mineral particles

Environmental Research

Shuyao Gu

Abby Bull

Jeneh K Perry

Amilee Huang

Matt J Hourwitz

...

2023/8/1

Time-dependent homeostatic mechanisms underlie brain-derived neurotrophic factor action on neural circuitry

Communications Biology

Kate M O’Neill

Erin D Anderson

Shoutik Mukherjee

Srinivasa Gandu

Sara A McEwan

...

2023/12/18

Collective Information and Communication in Morphologically Distinct Astrocytes

bioRxiv

Nicholas J Mennona

Barbara Barile

Hoony Kang

Valentina Benfenati

Grazia P Nicchia

...

2023

Nanotopography modulates intracellular excitable systems through cytoskeleton actuation

Proceedings of the National Academy of Sciences

Qixin Yang

Yuchuan Miao

Parijat Banerjee

Matt J Hourwitz

Minxi Hu

...

2023/5/9

Enabled primarily controls filopodial morphology, not actin organization, in the TSM1 growth cone in Drosophila

Molecular Biology of the Cell

Hsiao Yu Fang

Rameen Forghani

Akanni Clarke

Philip G McQueen

Aravind Chandrasekaran

...

2023/7/1

Development of an accelerated cellular model for early changes in Alzheimer’s disease

Scientific Reports

Huijing Xue

Sylvester Gate III

Emma Gentry

Wolfgang Losert

Kan Cao

2023/10/26

Development of an Accelerated Cellular Model for Alzheimer's Disease

bioRxiv

Huijing Xue

Sylvester J Gates III

Emma Gentry

Wolfgang Losert

Kan Cao

2023

NeuroWRAP: integrating, validating, and sharing neurodata analysis workflows

Frontiers in Neuroinformatics

Zac Bowen

Gudjon Magnusson

Madeline Diep

Ujjwal Ayyangar

Aleksandr Smirnov

...

2023/4/25

Protocol for electrotaxis of large epithelial cell sheets

STAR protocols

Yan Zhang

Rachel M Lee

Zijie Zhu

Yaohui Sun

Kan Zhu

...

2023/6/16

Real time spatial light modulation for informed photostimulation of neuronal cells

Wolfgang Losert

Dulara de Zoysa

2023/10/5

Actin dynamics as a multiscale integrator of cellular guidance cues

Frontiers in Cell and Developmental Biology

Abby L Bull

Leonard Campanello

Matt J Hourwitz

Qixin Yang

Min Zhao

...

2022/4/27

See List of Professors in Wolfgang Losert University(University of Maryland, Baltimore)

Co-Authors

H-index: 125
Edward Ott

Edward Ott

University of Maryland, Baltimore

H-index: 59
Satyandra K. Gupta

Satyandra K. Gupta

University of Southern California

H-index: 40
Patrick Kanold

Patrick Kanold

Johns Hopkins University

H-index: 37
Naomi Murdoch

Naomi Murdoch

Institut Supérieur de l'Aéronautique et de l'Espace

H-index: 33
Michelle Girvan

Michelle Girvan

University of Maryland, Baltimore

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