Michael J Ragusa

Michael J Ragusa

Dartmouth College

H-index: 19

North America-United States

About Michael J Ragusa

Michael J Ragusa, With an exceptional h-index of 19 and a recent h-index of 15 (since 2020), a distinguished researcher at Dartmouth College, specializes in the field of Autophagy, Structural Biology, Biochemistry, Cell Biology.

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

The structure of the diheme cytochrome c4 from Neisseria gonorrhoeae reveals multiple contributors to tuning reduction potentials

Molecular basis for the transcriptional regulation of an epoxide-based virulence circuit in Pseudomonas aeruginosa

A new GUV-based assay to reconstitute membrane tethering in vitro demonstrates the vesicle tethering ability of the selective autophagy scaffold Atg11

A comparative analysis of the membrane binding and remodeling properties of two related sorting nexin complexes involved in autophagy

Atg23 is a vesicle-tethering protein

Characterization of Protein–Membrane Interactions in Yeast Autophagy

Dimerization-dependent membrane tethering by Atg23 is essential for yeast autophagy

Membrane binding and homodimerization of Atg16 via two distinct protein regions is essential for autophagy in yeast

Michael J Ragusa Information

University

Position

Assistant Professor

Citations(all)

2373

Citations(since 2020)

960

Cited By

1861

hIndex(all)

19

hIndex(since 2020)

15

i10Index(all)

21

i10Index(since 2020)

19

Email

University Profile Page

Google Scholar

Michael J Ragusa Skills & Research Interests

Autophagy

Structural Biology

Biochemistry

Cell Biology

Top articles of Michael J Ragusa

Title

Journal

Author(s)

Publication Date

The structure of the diheme cytochrome c4 from Neisseria gonorrhoeae reveals multiple contributors to tuning reduction potentials

Journal of Inorganic Biochemistry

Fangfang Zhong

Morgan E Reik

Michael J Ragusa

Ekaterina V Pletneva

2024/4/1

Molecular basis for the transcriptional regulation of an epoxide-based virulence circuit in Pseudomonas aeruginosa

bioRxiv

Susu He

Noor M Taher

Kelli L Hvorecny

Michael J Ragusa

Christopher D Bahl

...

2024

A new GUV-based assay to reconstitute membrane tethering in vitro demonstrates the vesicle tethering ability of the selective autophagy scaffold Atg11

bioRxiv

Devika Andhare

Michael J Ragusa

2023

A comparative analysis of the membrane binding and remodeling properties of two related sorting nexin complexes involved in autophagy

Biochemistry

Erin F Reinhart

Sarah Katzenell

Devika Andhare

Katherine M Bauer

Michael J Ragusa

2022/4/14

Atg23 is a vesicle-tethering protein

Autophagy

Kelsie A Leary

Wayne D Hawkins

Devika Andhare

Hana Popelka

Daniel J Klionsky

...

2022/10/3

Characterization of Protein–Membrane Interactions in Yeast Autophagy

Kelsie A Leary

Michael J Ragusa

2022/6/9

Dimerization-dependent membrane tethering by Atg23 is essential for yeast autophagy

Cell reports

Wayne D Hawkins

Kelsie A Leary

Devika Andhare

Hana Popelka

Daniel J Klionsky

...

2022/4/19

Membrane binding and homodimerization of Atg16 via two distinct protein regions is essential for autophagy in yeast

Journal of molecular biology

Hana Popelka

Erin F Reinhart

Shree Padma Metur

Kelsie A Leary

Michael J Ragusa

...

2021/3/5

Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition)1

Daniel J Klionsky

Amal Kamal Abdel-Aziz

Sara Abdelfatah

Mahmoud Abdellatif

Asghar Abdoli

...

2021/1/2

A highly conserved glutamic acid in ALFY inhibits membrane binding to aid in aggregate clearance

Traffic

Erin F Reinhart

Nicole A Litt

Sarah Katzenell

Maria Pellegrini

Ai Yamamoto

...

2021/1

The carboxy terminus of yeast Atg13 binds phospholipid membrane via motifs that overlap with the Vac8-interacting domain

Autophagy

Damián Gatica

Alejandro Damasio

Clarence Pascual

Daniel J Klionsky

Michael J Ragusa

...

2020/6/2

Structure and redox properties of the diheme electron carrier cytochrome c4 from Pseudomonas aeruginosa

Journal of inorganic biochemistry

Jessica M Carpenter

Fangfang Zhong

Michael J Ragusa

Ricardo O Louro

Deborah A Hogan

...

2020/2/1

The third coiled coil domain of Atg11 is required for shaping mitophagy initiation sites

Journal of molecular biology

Hannah K Margolis

Sarah Katzenell

Kelsie A Leary

Michael J Ragusa

2020/10/2

See List of Professors in Michael J Ragusa University(Dartmouth College)