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Time-dependent homeostatic mechanisms underlie brain-derived neurotrophic factor action on neural circuitry

  • Kate M. O’Neill
  • , Erin D. Anderson
  • , Shoutik Mukherjee
  • , Srinivasa Gandu
  • , Sara A. McEwan
  • , Anton Omelchenko
  • , Ana R. Rodriguez
  • , Wolfgang Losert
  • , David F. Meaney
  • , Behtash Babadi
  • , Bonnie L. Firestein

Producción científica: Articlerevisión exhaustiva

7 Citas (Scopus)

Resumen

Plasticity and homeostatic mechanisms allow neural networks to maintain proper function while responding to physiological challenges. Despite previous work investigating morphological and synaptic effects of brain-derived neurotrophic factor (BDNF), the most prevalent growth factor in the central nervous system, how exposure to BDNF manifests at the network level remains unknown. Here we report that BDNF treatment affects rodent hippocampal network dynamics during development and recovery from glutamate-induced excitotoxicity in culture. Importantly, these effects are not obvious when traditional activity metrics are used, so we delve more deeply into network organization, functional analyses, and in silico simulations. We demonstrate that BDNF partially restores homeostasis by promoting recovery of weak and medium connections after injury. Imaging and computational analyses suggest these effects are caused by changes to inhibitory neurons and connections. From our in silico simulations, we find that BDNF remodels the network by indirectly strengthening weak excitatory synapses after injury. Ultimately, our findings may explain the difficulties encountered in preclinical and clinical trials with BDNF and also offer information for future trials to consider.

Idioma originalEnglish
Número de artículo1278
PublicaciónCommunications Biology
Volumen6
N.º1
DOI
EstadoPublished - dic 2023

Nota bibliográfica

Publisher Copyright:
© 2023, The Author(s).

Financiación

The authors would like to acknowledge the University of Maryland Imaging Incubator Core Facility for providing and maintaining the systems used in collecting images for a portion of this work. Moreover, we would like to acknowledge the following funding: New Jersey Commission on Brain Injury Research Grants CBIR14IRG019 and CBIR20IRG003 to B.L.F.; National Science Foundation IOS-0919747 to B.L.F. and CCF1552946, ECCS1807216, ECCS2032649 to B.B.; Coalition for Brain Injury Research to B.L.F.; National Institutes of Health NIGMS Biotechnology Training Program Fellowship T32 GM008339-20 to K.M.O., A.O., A.R.R. and NINDS 1U19NS107464-01 to W.L., B.B.; Paul G. Allen Frontiers Group Grant 12347 to D.F.M.; UMD Brain & Behavior Initiative Seed Grant FY18 to W.L., B.B.; New Jersey Commission on Brain Injury Research Predoctoral Fellowship CBIR13FEL002 to K.M.O. and CBIR19FEL018 to A.O. and CBIR20FEL009 to S.G.; U.S. Department of Education GAANN Predoctoral Fellowship P200A150131 to K.M.O.

FinanciadoresNúmero del financiador
National Institutes of HealthGM008339-20
University of Maryland Imaging Incubator Core FacilityCBIR14IRG019, CBIR20IRG003
U.S. Department of Education, OSERSP200A150131
National Science Foundation0919747, 1807216, IOS-0919747, CCF1552946, ECCS1807216, ECCS2032649, 1552946
National Institute of Neurological Disorders and StrokeCBIR13FEL002, 1U19NS107464-01, CBIR19FEL018, CBIR20FEL009, 12347

    ASJC Scopus subject areas

    • Medicine (miscellaneous)
    • General Biochemistry, Genetics and Molecular Biology
    • General Agricultural and Biological Sciences

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