A New Model for Studying the Effects ofMycobacterium lepraeon Schwann Cell and Neuron Interactions
Author(s) -
Deanna A. Hagge,
Sandra Oby Robinson,
David M. Scollard,
Gregory McCormick,
Diana L. Williams
Publication year - 2002
Publication title -
the journal of infectious diseases
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.69
H-Index - 252
eISSN - 1537-6613
pISSN - 0022-1899
DOI - 10.1086/344313
Subject(s) - mycobacterium leprae , schwann cell , neuron , neuroscience , biology , mycobacterium , leprosy , cell , microbiology and biotechnology , immunology , bacteria , genetics
Millions of patients with leprosy suffer from nerve damage resulting in disabilities as a consequence of Mycobacterium leprae infection. However, mechanisms of nerve damage have not been elucidated because of the lack of a model that maintains M. leprae viability and mimics disease conditions. A model was developed using viable M. leprae, rat Schwann cells, and Schwann cell-neuron cocultures incubated at 33 degrees C. M. leprae retained 56% viability in Schwann cells for 3 weeks after infection at 33 degrees C, compared with 3.6% viability at 37 degrees C. Infected Schwann cells had altered morphology and expression of genes encoding cellular adhesion molecules at 33 degrees C but were capable of interacting with and myelinating neurons. Cocultures, infected after myelination occurred, showed no morphological changes in myelin architecture after 1 month of incubation at 33 degrees C, and M. leprae retained 53% viability. This article describes a new model for studying the effects of M. leprae on Schwann cells.
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