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Activity of a Novel Anti-Inflammatory Agent F-3,6'-dithiopomalidomide as a Treatment for Traumatic Brain Injury.

Abstract

Traumatic brain injury (TBI) is a major risk factor for several neurodegenerative disorders, including Parkinson's disease (PD) and Alzheimer's disease (AD). Neuroinflammation is a cause of later secondary cell death following TBI, has the potential to aggravate the initial impact, and provides a therapeutic target, albeit that has failed to translate into clinical trial success. Thalidomide-like compounds have neuroinflammation reduction properties across cellular and animal models of TBI and neurodegenerative disorders. They lower the generation of proinflammatory cytokines, particularly TNF-α which is pivotal in microglial cell activation. Unfortunately, thalidomide-like drugs possess adverse effects in humans before achieving anti-inflammatory drug levels. We developed F-3,6'-dithiopomalidomide (F-3,6'-DP) as a novel thalidomide-like compound to ameliorate inflammation. F-3,6'-DP binds to cereblon but does not efficiently trigger the degradation of the transcription factors (SALL4, Ikaros, and Aiolos) associated with the teratogenic and anti-proliferative responses of thalidomide-like drugs. We utilized a phenotypic drug discovery approach that employed cellular and animal models in the selection and development of F-3,6'-DP. F-3,6'-DP significantly mitigated LPS-induced inflammatory markers in RAW 264.7 cells, and lowered proinflammatory cytokine/chemokine levels in the plasma and brain of rats challenged with systemic LPS. We subsequently examined immunohistochemical, biochemical, and behavioral measures following controlled cortical impact (CCI) in mice, a model of moderate TBI known to induce inflammation. F-3,6'-DP decreased CCI-induced neuroinflammation, neuronal loss, and behavioral deficits when administered after TBI. F-3,6'-DP represents a novel class of thalidomide-like drugs that do not lower classical cereblon-associated transcription factors but retain anti-inflammatory actions and possess efficacy in the treatment of TBI and potentially longer-term neurodegenerative disorders.

Authors

Shih Chang Hsueh, Michael T Scerba, David Tweedie, Daniela Lecca, Dong Seok Kim, Abdul Mannan Baig, Yu Kyung Kim, Inho Hwang, Sun Kim, Warren R Selman, Barry J Hoffer, Nigel H Greig

Drug Design Development Section, Translational Gerontology Branch, Intramural Research Program National Institute on Aging, NIH, Baltimore, MD 21224, USA.

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11 products referenced in this paper

(15103) Aiolos (D1C1E) Rabbit Monoclonal Antibody

an Antibody by Cell Signaling Technology

Applications:

WB (1:1000)

Reactivity:

Homo sapiens (Human)

Images:

(9034) Ikaros (D10E5) Rabbit Monoclonal Antibody

an Antibody by Cell Signaling Technology

Applications:

WB

Reactivity:

Homo sapiens (Human)

Images:

(ab29112) Anti-Sall4 antibody

an Antibody by Abcam

Applications:

WB (1:1000)

Reactivity:

Homo sapiens (Human)

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Journal Biomedicines

Volume 10

Issue 10

Publication Date 30 September 2022

View on PubMed®

Publication metadata is provided by PubMed®, courtesy of the U.S. National Library of Medicine. Information for this publication was last updated on 2024-05-26 11:37:22 UTC.

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