World's Best Scientists 2026 revealed!

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Biology and Biochemistry

D-Index
46
Citations
7687
World Ranking
18949
National Ranking
7741

Overview

Lewis J. Feldman is affiliated with the University of California, Berkeley in the United States. Their research spans several interconnected fields within biological sciences, with a strong focus on plant and fungal biology as well as ecological interactions.

The scientist's main fields of study include Agricultural and Biological Sciences and Medicine, with notable work in the subfields of Plant Science, Pharmacology, and Insect Science. Their work covers diverse but related topics, including Mycorrhizal Fungi and Plant Interactions, Fungal Biology and Applications, and Forest Ecology and Biodiversity Studies.

Lewis J. Feldman has published research in the following venues:

  • New Phytologist
  • bioRxiv (Cold Spring Harbor Laboratory)

Two recent papers document key aspects of their research:

  • "Routes to roots: direct evidence of water transport by arbuscular mycorrhizal fungi to host plants," 2022, New Phytologist
  • "Routes to Roots: Direct Evidence of Water Transport by Arbuscular Mycorrhizal Fungi to Host Plants," 2020, bioRxiv (Cold Spring Harbor Laboratory)

These publications demonstrate a focus on the role of arbuscular mycorrhizal fungi in plant water transport, an area intersecting plant physiology and fungal biology.

Frequent collaborators in Lewis J. Feldman's research include:

  • Anne Kakouridis
  • John A. Hagen
  • Megan Kan
  • Donald J. Herman
  • Jennifer Pett-Ridge

These co-authors have contributed to multiple projects, suggesting ongoing collaborative efforts across related research topics.

Best Publications

  • Calcium and signal transduction in plants

    B. W. Poovaiah;A. S. N. Reddy

  • Auxin and ETTIN in Arabidopsis gynoecium morphogenesis.

    Jennifer L. Nemhauser;Lewis J. Feldman;Patricia C. Zambryski

  • Floral determination and expression of floral regulatory genes in Arabidopsis

    F.D. Hempel;D. Weigel;M.A. Mandel;G. Ditta

  • Regulation of root apical meristem development.

    Keni Jiang;Lewis J. Feldman

  • Quiescent center formation in maize roots is associated with an auxin-regulated oxidizing environment.

    Keni Jiang;Yu Ling Meng;Lewis J. Feldman

  • Bi-directional inflorescence development in Arabidopsis thaliana : acropetal initiation of flowers and basipetal initiation of paraclades

    Frederick D. Hempel;Lewis J. Feldman

  • REGULATION OF ROOT DEVELOPMENT

    Lewis J. Feldman

  • A membrane-associated thioredoxin required for plant growth moves from cell to cell, suggestive of a role in intercellular communication

    Ling Meng;Joshua H. Wong;Lewis J. Feldman;Peggy G. Lemaux

  • CLE-like (CLEL) peptides control the pattern of root growth and lateral root development in Arabidopsis

    Ling Meng;Bob B. Buchanan;Lewis J. Feldman;Sheng Luan

  • Comprehensive Analysis of CLE Polypeptide Signaling Gene Expression and Overexpression Activity in Arabidopsis

    JiHyung Jun;Elisa Fiume;Adrienne H.K. Roeder;Ling Meng

  • Auxin Metabolism in the Root Apical Meristem

    Nancy M. Kerk;Keni Jiang;Lewis J. Feldman

  • A rapid TRIzol‐based two‐step method for DNA‐free RNA extraction from Arabidopsis siliques and dry seeds

    Ling Meng;Lewis Feldman

  • Expression and characterization of a redox-sensing green fluorescent protein (reduction-oxidation-sensitive green fluorescent protein) in Arabidopsis.

    Keni Jiang;Christian Schwarzer;Elizabeth Lally;Shibo Zhang

  • Redox regulation of root apical meristem organization: Connecting root development to its environment

    Mario C. De Tullio;Keni Jiang;Lewis J. Feldman

  • Transcription Profiling of the Early Gravitropic Response in Arabidopsis Using High-Density Oligonucleotide Probe Microarrays

    Nick Moseyko;Tong Zhu;Hur-Song Chang;Xun Wang

  • The Maize Root

    L. Feldman

  • Characterization of a calcium/calmodulin-dependent protein kinase homolog from maize roots showing light-regulated gravitropism

    Ying-Tang Lu;Hiroyoshi Hidaka;Lewis J. Feldman

  • The de novo origin of the quiescent center regenerating root apices of Zea mays

    Lewis J. Feldman

  • Redox states of plastids and mitochondria differentially regulate intercellular transport via plasmodesmata

    Solomon Stonebloom;Jacob O. Brunkard;Alexander C. Cheung;Keni Jiang

  • Salt Stress Affects the Redox Status of Arabidopsis Root Meristems.

    Keni Jiang;Jacob Moe-Lange;Lauriane Hennet;Lewis J. Feldman

Frequent Co-Authors

Patricia Zambryski
Patricia Zambryski University of California, Berkeley
John G. Torrey
John G. Torrey Harvard University
Peter J. Bickel
Peter J. Bickel University of California, Berkeley
Tong Zhu
Tong Zhu Research Triangle Park Foundation
Bob B. Buchanan
Bob B. Buchanan University of California, Berkeley
Sheng Luan
Sheng Luan University of California, Berkeley
Peter W. Barlow
Peter W. Barlow University of Bristol
Mary K. Firestone
Mary K. Firestone University of California, Berkeley
Elliot M. Meyerowitz
Elliot M. Meyerowitz California Institute of Technology
Detlef Weigel
Detlef Weigel Max Planck Institute for Developmental Biology

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