Negative feedback regulation of growth factor signaling in adult spermatogonial stem cells
Negative feedback regulation of growth factor signaling in adult spermatogonial stem cells
批准号:
10361426
负责人:
Marco Seandel
金额:
$36.44万
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-03-01 至 2026-02-28
关键词:
AblationAddressAdultBiochemicalBiosensorCell Culture SystemCell LineCellsClone CellsDUSP6 proteinDataEquilibriumFGF2 geneFeedbackFibrinogenFibroblast Growth FactorFutureGene FamilyGenesGeneticGenetic DiseasesGenetic TranscriptionGenetically Engineered MouseGerm CellsGoalsGrowthGrowth FactorGrowth Factor ReceptorsHyperactivityImageImpairmentIn VitroInfertilityKineticsLaboratoriesLightMAP Kinase GeneMammalsMeasurementMethodologyMolecularMusOutcomePathway interactionsPhenotypePhysiologicalPopulationProcessProductionRecoveryRegulationReporterRoleSeriesSignal TransductionSpecificitySpermatogoniaStem cell transplantStructureSystemTestingTestisTimeTranslatingTransplantationUp-RegulationWorkbaseexperimental studyglial cell-line derived neurotrophic factorimprovedin vivomembermouse modelneurotrophic factornovelpreservationpreventreal time monitoringresponseself-renewalsingle-cell RNA sequencingsperm cellstem cell biomarkersstem cell differentiationstem cell functionstem cell nichestem cell self renewalstem cellstherapeutic target
中文摘要
点击翻译按钮获取中文摘要
英文摘要
Abstract
Niche-derived growth factors (GFs) are essential for establishing and maintaining mammalian
spermatogonial stem cells (SSCs) in the adult testis. In culture, however, optimal conditions for
expansion of pure populations of self-renewing SSCs remain elusive. We recently found that
mouse SSCs possess unexpectedly robust mechanisms to counter-regulate GF signaling by
inducing expression of negative feedback regulators (NFRs), including members of the Spry
and Dusp gene families. Abrogation of specific NFRs in SSCs led to increase ERK signaling,
decreased expression of stem cell-associated genes in vitro and loss of stem cell activity upon
transplantation, suggesting that excessive GF-dependent signaling is detrimental to SSC
function and may favor differentiation. The cellular alterations that occur following perturbation
of NFRs are unknown. However, our data imply that SSCs are programmed to limit ERK
signaling within a narrow physiological range. This proposal addresses the mechanisms by
which NFRs restrict GF signaling in SSCs, prevent unscheduled differentiation, and enable
long-term propagation of SSC clones. Using genetic mouse models, SSC culture,
transplantation analysis, and a newly-developed real-time biosensor for ERK activity, we
address the following questions: (1) Which NFRs are required for SSC self-renewal? (2) How
does ablation of NFRs result in loss of stem cell activity? (3) How do NFRs control the dynamic
intracellular signaling cascades downstream of GF receptors? And (4) At which nodes in the
ERK pathway do NFRs exert their actions? In addition to providing a rational basis to improve
SSC culture systems, these studies will also identify novel adult SSC markers and shed light on
mechanisms by which cross-talk between the niche and SSCs balances self-renewal and
differentiation in vivo.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Clonal competition in stem cells as a driver of paternal age effect diseases
-
批准号:8570427
-
项目类别:
-
资助金额:$252.75万
-
财政年份:2013
-
负责人:Marco Seandel
-
依托单位:
海外基金