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Neuroprotection through G-CSF: recent advances and future viewpoints. | LitMetric

Neuroprotection through G-CSF: recent advances and future viewpoints.

Pharmacol Rep

Department of Pharmaceutical Sciences and Technology, Maharaja Ranjit Singh Punjab Technical University, Bathinda, Punjab, India.

Published: April 2021

AI Article Synopsis

  • G-CSF (Granulocyte-colony stimulating factor) is a 19.6 kDa glycoprotein that plays a vital role in the growth and survival of neutrophil cells, crucial for the immune system.
  • It has been clinically used to treat low white blood cell counts due to chemotherapy, but recent research suggests it may also protect neurons and promote brain health by mobilizing stem cells and reducing inflammation.
  • The review aims to summarize G-CSF's neuroprotective mechanisms and potential clinical applications for neurodegenerative diseases like Alzheimer’s, Parkinson’s, and Huntington’s disease.

Article Abstract

Granulocyte-colony stimulating factor (G-CSF), a member of the cytokine family of hematopoietic growth factors, is 19.6 kDa glycoprotein which is responsible for the proliferation, maturation, differentiation, and survival of neutrophilic granulocyte lineage. Apart from its proven clinical application to treat chemotherapy-associated neutropenia, recent pre-clinical studies have highlighted the neuroprotective roles of G-CSF i.e., mobilization of haemopoietic stem cells, anti-apoptotic, neuronal differentiation, angiogenesis and anti-inflammatory in animal models of neurological disorders. G-CSF is expressed by numerous cell types including neuronal, immune and endothelial cells. G-CSF is released in autocrine manner and binds to its receptor G-CSF-R which further activates numerous signaling transduction pathways including PI3K/AKT, JAK/STAT and MAP kinase, and thereby promote neuronal survival, proliferation, differentiation, mobilization of hematopoietic stem and progenitor cells. The expression of G-CSF receptors (G-CSF-R) in the different brain regions and their upregulation in response to neuronal insult indicates the autocrine protective signaling mechanism of G-CSF by inhibition of apoptosis, inflammation, and stimulation of neurogenesis. These observed neuroprotective effects of G-CSF makes it an attractive target to mitigate neurodegeneration associated with neurological disorders. The objective of the review is to highlight and summarize recent updates on G-CSF as a therapeutically versatile neuroprotective agent along with mechanisms of action as well as possible clinical applications in neurodegenerative disorders including AD, PD and HD.

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Source
http://dx.doi.org/10.1007/s43440-020-00201-3DOI Listing

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