The review proposes that Ca2+-triggered Schwann-cell secretomes act as structural and functional scaffolds for nerve repair. These secretomes are described as influencing Schwann cells, neurons, and glia through autocrine and paracrine mechanisms.
First-pass extracted concept
Ca2+-triggered Schwann cell secretomes
Aliases
Ca2+-triggered secretomes
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Evidence Snippets
These Ca2+-triggered secretomes modulate SC phenotype and surrounding neurons, orchestrating axon regeneration and myelin repair via autocrine and paracrine mechanisms.
This review synthesizes emerging evidence demonstrating that optogenetically or endogenously induced Ca2+ influx in SCs leads to the release of a diverse set of neurotrophic and regulatory factors. These Ca2+-triggered secretomes modulate SC phenotypes and surrounding neurons, orchestrating axon regeneration and myelin repair via autocrine and paracrine mechanisms.
Supporting Sources
Linked Claims
Ca2+-triggered Schwann-cell secretomes can be viewed as structural and functional scaffolds for nerve repair.
By integrating insights from optogenetic manipulation and intrinsic signaling biology, this review proposes a conceptual framework in which Ca2+-triggered SC secretomes act as structural and functional scaffolds for nerve repair.
The review proposes that Ca2+-triggered Schwann-cell secretomes act as structural and functional scaffolds for nerve repair.
By integrating insights from optogenetic manipulation and intrinsic signaling biology, this review proposes a conceptual framework in which Ca2+-triggered SC secretomes act as structural and functional scaffolds for nerve repair.
Ca2+-triggered Schwann-cell secretomes modulate Schwann-cell phenotype and surrounding neurons to orchestrate axon regeneration and myelin repair through autocrine and paracrine mechanisms.
These Ca2+-triggered secretomes modulate SC phenotype and surrounding neurons, orchestrating axon regeneration and myelin repair via autocrine and paracrine mechanisms.
Ca2+-triggered Schwann-cell secretomes modulate Schwann-cell phenotypes and surrounding neurons to support axon regeneration and myelin repair through autocrine and paracrine mechanisms.
These Ca2+-triggered secretomes modulate SC phenotypes and surrounding neurons, orchestrating axon regeneration and myelin repair via autocrine and paracrine mechanisms.
Optogenetically or endogenously induced Ca2+ influx in Schwann cells leads to release of diverse neurotrophic and regulatory factors.
This review synthesizes emerging evidence demonstrating that optogenetically or endogenously induced Ca2+ influx in SCs leads to the release of a diverse set of neurotrophic and regulatory factors.
Optogenetically or endogenously induced Ca2+ influx in Schwann cells leads to release of diverse neurotrophic and regulatory factors.
This review synthesizes emerging evidence demonstrating that optogenetically or endogenously induced Ca2+ influx in SCs leads to the release of a diverse set of neurotrophic and regulatory factors.