Marta Margeta, MD, PhD

Associate Director of Undergraduate Pathology Education
Medical Director of Neuromuscular Pathology Laboratory
Associate Professor
Department of Pathology
+1 415 514-0228
Research Overview: 

Abnormal excitability contributes to neurologic disease pathogenesis either by impairing cell function or by increasing cellular susceptibility to injury. In most neurologic diseases, the pathologic process does not involve the entire neuromuscular unit. Instead, only specific subsets of neurons, glial cells, or muscle fibers are injured or die, and the nature of this selective injury determines the symptoms and clinical course of each disease. The long-term goal of our laboratory is to elucidate how ion channel signaling and metabolic abnormalities contribute to the selective vulnerability of different cell populations and thus influence onset and/or progression of different neurologic disorders. To accomplish this goal, we use cell culture and mouse models and a combination of different approaches (molecular and cell biology, immunohistochemistry, in situhybridization, imaging, biochemistry, and electrophysiology) to investigate two distinct but related areas:

(1) The function of intrinsic antioxidant signaling in the brain and skeletal muscle. Our aim is to define the role of endogenous antioxidant pathways in cellular susceptibility to injury, to elucidate how these pathways are regulated by neuronal activity, and to determine how these pathways modulate ion channel signaling in neurons, glia, and skeletal muscle fibers. Our current focus is on the Keap1/Nrf2/ARE pathway, which regulates the coordinated expression of a battery of antioxidant and phase II detoxification enzymes in response to a mild oxidative or ER stress in many different tissues, including the brain and skeletal muscle.

(2) Autophagy impairment and neurologic disease. In animal models, autophagy deficiency results in neurodegeneration and skeletal muscle atrophy; little, however, is known about the role of autophagy in normal neurologic function. We seek to elucidate why the consequences of autophagy deficiency (failure of autophagy initiation) and autophagy impairment (block of autophagy completion) differ in the skeletal muscle but are the same in the brain, to determine how autophagy regulates intrinsic antioxidant pathways and cellular excitability, and to establish how autophagy failure contributes to neuromuscular disease pathogenesis.

Our laboratory is also pursuing translational research with a goal to improve tissue-based diagnostics of neuromuscular diseases. To learn more about ongoing basic and translational research projects, please visit our lab Website.

Primary Thematic Area: 
Secondary Thematic Area: 
Tissue / Organ Biology & Endocrinology


Featured Publications: 

T-Cell-Mediated Inflammatory Myopathies in HIV-Positive Individuals: A Histologic Study of 19 Cases.

Journal of neuropathology and experimental neurology

Hiniker A, Daniels BH, Margeta M

Astrocytes increase the activity of synaptic GluN2B NMDA receptors.

Frontiers in cellular neuroscience

Hahn J, Wang X, Margeta M

Neuronal activity regulates astrocytic Nrf2 signaling.

Proceedings of the National Academy of Sciences of the United States of America

Habas A, Hahn J, Wang X, Margeta M