A nutritional intervention approach using thymidine supplementation to maintain telomere length in human stem cells. Based on a genome-wide CRISPR screen identifying thymidine metabolism as a critical telomere regulator, this strategy offers a potential GRAS pathway to support tissue regenerative capacity without genetic manipulation risks.
Telomere shortening is a fundamental driver of aging and tissue decline, contributing to conditions such as aplastic anemia and other degenerative disorders. This research proposes thymidine supplementation as a novel nutritional intervention to maintain telomere homeostasis in human stem cells. The approach is grounded in the first genome-wide CRISPR screen for telomere length regulators in humans, which identified thymidine nucleotide metabolism as a critical pathway governing telomere length. By leveraging a naturally occurring nucleoside with Generally Recognized as Safe (GRAS) potential, this strategy aims to restore tissue regenerative capacity without the risks associated with direct genetic manipulation of telomerase.
The technology is currently at an early-to-mid stage of development. The discovery and initial validation have been completed and published, demonstrating reproducible telomere elongation effects across multiple cell lines including patient-derived iPSCs. Unpublished data extends these findings to primary fibroblasts. The proposed next phase involves validation in disease-relevant human hematopoietic stem and progenitor cells through both in vitro assays and in vivo xenotransplantation models. This validation phase is expected to take approximately one year and requires partnership support for personnel and experimental resources. Upon successful validation, the pathway toward advancing thymidine as a nutritional intervention for telomere defense would involve guidance from partners experienced in supplement development and commercialization.
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