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Terrone L. Rosenberry

Terrone L. Rosenberry

D-Index & Metrics

Chemistry

D-Index
55
Citations
10799
World Ranking
12128
National Ranking
3250

Overview

Terrone L. Rosenberry is affiliated with the Mayo Clinic in the United States, with a focus on biomedical research intersecting medicine and biochemistry. Their work predominantly addresses topics within molecular biology, physiology, and spectroscopy, with a specific emphasis on neurodegenerative diseases.

Their research primarily covers these main fields of study:

  • Medicine
  • Biochemistry, Genetics and Molecular Biology

Within these domains, they have contributed extensively to several subfields such as:

  • Molecular Biology
  • Physiology
  • Spectroscopy
  • Biomaterials
  • Pharmacology

The core topics addressed by the scientist include:

  • Alzheimer's disease research and treatments
  • Advanced NMR Techniques and Applications
  • Protein Structure and Dynamics
  • Supramolecular Self-Assembly in Materials
  • Lipid Membrane Structure and Behavior
  • Cholinesterase and Neurodegenerative Diseases
  • Drug Transport and Resistance Mechanisms

Notable recent publications authored or coauthored by Rosenberry reflect a research interest centered around amyloid beta peptides and their structural and biochemical properties related to Alzheimer's disease. These are:

  • Oligomer Formation by Amyloid-β42 in a Membrane-Mimicking Environment in Alzheimer's Disease, 2022, published in Molecules
  • Cathepsin D regulates cerebral Aβ42/40 ratios via differential degradation of Aβ42 and Aβ40, 2020, published in Alzheimer s Research & Therapy
  • Out-of-Register Parallel β-Sheets and Antiparallel β-Sheets Coexist in 150-kDa Oligomers Formed by Amyloid-β(1-42), 2020, published in Journal of Molecular Biology
  • A Second Look at the Crystal Structures of Drosophila melanogaster Acetylcholinesterase in Complex with Tacrine Derivatives Provides Insights Concerning Catalytic Intermediates and the Design of Specific Insecticides, 2020, published in Molecules
  • A common pathway for detergent-assisted oligomerization of Aβ42, 2023, published in Communications Biology

Frequent collaborators in their research include:

  • Anant K. Paravastu
  • Jens O. Watzlawik
  • Huan-Xiang Zhou
  • Yuan Gao
  • Scott M. Stagg

Rosenberry's research has been published in several venues, with multiple papers appearing in:

  • bioRxiv (Cold Spring Harbor Laboratory)
  • Molecules
  • Alzheimer s Research & Therapy
  • Journal of Molecular Biology
  • Communications Biology

Best Publications

  • Acetylcholinesterase: From 3D structure to function

    Hay Dvir;Israel Silman;Michal Harel;Terrone L. Rosenberry

  • Lipid analysis of the glycoinositol phospholipid membrane anchor of human erythrocyte acetylcholinesterase. Palmitoylation of inositol results in resistance to phosphatidylinositol-specific phospholipase C.

    W L Roberts;J J Myher;A Kuksis;M G Low

  • Three‐dimensional structures of Drosophila melanogaster acetylcholinesterase and of its complexes with two potent inhibitors

    Michal Harel;Gitay Kryger;Terrone L. Rosenberry;William D. Mallender

  • Structural characterization of the glycoinositol phospholipid membrane anchor of human erythrocyte acetylcholinesterase by fast atom bombardment mass spectrometry.

    W L Roberts;S Santikarn;V N Reinhold;T L Rosenberry

  • Decay accelerating factor of complement is anchored to cells by a C-terminal glycolipid.

    M. Edward Medof;Elizabeth I. Walter;William L. Roberts;Robert Haas

  • Structures of Human Acetylcholinesterase Bound to Dihydrotanshinone I and Territrem B Show Peripheral Site Flexibility

    Jonah Cheung;Ebony N. Gary;Kazuro Shiomi;Terrone L. Rosenberry

  • Structure of 18S and 14S acetylcholinesterase. Identification of collagen-like subunits that are linked by disulfide bonds to catalytic subunits.

    Terrone L. Rosenberry;Jeanne M. Richardson

  • Isolation and characterization of acetylcholinesterase from Drosophila.

    A L Gnagey;M Forte;T L Rosenberry

  • Effective Charge on Acetylcholinesterase Active Sites Determined from the Ionic Strength Dependence of Association Rate Constants with Cationic Ligands

    Hans-Juergen Nolte;Terrone L. Rosenberry;Eberhard Neumann

  • Substrate binding to the peripheral site of acetylcholinesterase initiates enzymatic catalysis. Substrate inhibition arises as a secondary effect.

    Tivadar Szegletes;William D. Mallender;Patrick J. Thomas;Terrone L. Rosenberry

  • Acetylcholinesterase from bovine caudate nucleus is attached to membranes by a novel subunit distinct from those of acetylcholinesterases in other tissues.

    N C Inestrosa;W L Roberts;T L Marshall;T L Rosenberry

  • Induction of the proteolytic activity of a membrane protein in Plasmodium falciparum by phosphatidyl inositol-specific phospholipase C

    Catherine Braun-Breton;Terrone L. Rosenberry;Luiz Pereira da Silva

  • Acetylcholinesterase of human erythrocytes and neuromuscular junctions: homologies revealed by monoclonal antibodies

    Douglas M. Fambrough;Andrew G. Engel;Terrone L. Rosenberry

  • Crystal Structure of Thioflavin T Bound to the Peripheral Site of Torpedo Californica Acetylcholinesterase Reveals How Thioflavin T Acts as a Sensitive Fluorescent Reporter of Ligand Binding to the Acylation Site.

    Michal Harel;Leilani K. Sonoda;Israel Silman;Joel L. Sussman

  • Differences in the glycolipid membrane anchors of bovine and human erythrocyte acetylcholinesterases.

    William L. Roberts;Benedict H. Kim;Terrone L. Rosenberry

  • Structure of human erythrocyte acetylcholinesterase. Characterization of intersubunit disulfide bonding and detergent interaction.

    Unknown

  • 3D Structure of Torpedo Californica Acetylcholinesterase Complexed with Huprine X at 2. 1 A Resolution: Kinetic and Molecular Dynamic Correlates.

    H. Dvir;D. M. Wong;M. Harel;X. Barril

  • Amyloid-β(1−42) Rapidly Forms Protofibrils and Oligomers by Distinct Pathways in Low Concentrations of Sodium Dodecylsulfate

    Unknown

  • Characterization of putative glycoinositol phospholipid anchor precursors in mammalian cells. Localization of phosphoethanolamine.

    S Hirose;G M Prince;D Sevlever;L Ravi

  • Structural basis for variations in the sensitivity of human decay accelerating factor to phosphatidylinositol-specific phospholipase C cleavage.

    E I Walter;W L Roberts;T L Rosenberry;W D Ratnoff

  • Location of seven post-translational modifications in rabbit elongation factor 1α including dimethyllysine, trimethyllysine, and glycerylphosphorylethanolamine

    T E Dever;C E Costello;C L Owens;T L Rosenberry

  • FASCICULIN 2 BINDS TO THE PERIPHERAL SITE ON ACETYLCHOLINESTERASE AND INHIBITS SUBSTRATE HYDROLYSIS BY SLOWING A STEP INVOLVING PROTON TRANSFER DURING ENZYME ACYLATION

    Jean Eastman;Erica J. Wilson;Carlos Cerveñansky;Terrone L. Rosenberry

  • Brain cDNA clone for human cholinesterase

    C. McTiernan;S. Adkins;A. Chatonnet;T. A. Vaughan

  • Insights into the mechanisms of action of anti-Aβ antibodies in Alzheimer’s disease mouse models

    Yona Levites;Lisa A. Smithson;Robert W. Price;Rachel S. Dakin

Frequent Co-Authors

Eberhard Neumann
Eberhard Neumann Bielefeld University
Bhupendra P. Doctor
Bhupendra P. Doctor Walter Reed Army Institute of Research
Suzanne Bon
Suzanne Bon École Normale Supérieure
James E. Dennis
James E. Dennis Baylor College of Medicine
Israel Silman
Israel Silman Weizmann Institute of Science
Thomas E. Dever
Thomas E. Dever National Institutes of Health
Jean Massoulié
Jean Massoulié École Normale Supérieure
William C. Merrick
William C. Merrick Case Western Reserve University
Nibaldo C. Inestrosa
Nibaldo C. Inestrosa Pontificia Universidad Católica de Chile
Adel A. F. Mahmoud
Adel A. F. Mahmoud Princeton University

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