Cell non-autonomous regulation of the unfolded protein response in aging
Cell non-autonomous regulation of the unfolded protein response in aging
批准号:
9292213
负责人:
Ashley Elizabeth Frakes
金额:
$5.71万
依托单位国家:
美国
项目类别:
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-08-01 至 2018-07-31
关键词:
ATF6 geneAgeAge of OnsetAgingAnimalsAtherosclerosisBreedingCRISPR/Cas technologyCaenorhabditis elegansCellsCellular StressDefectDiabetes MellitusDietDistalDistantEconomic BurdenElderlyEmployee StrikesEndoplasmic ReticulumEndoribonucleasesEnterobacteria phage P1 Cre recombinaseGenesGeneticGenetic ScreeningGenetic TranscriptionHealthHealthcare SystemsHumanHypothalamic structureIndividualIntestinesLaboratoriesLifeLiverLong-Term EffectsLongevityMalignant NeoplasmsMammalsMediatingMediator of activation proteinMetabolicMetabolic DiseasesMolecular ChaperonesMonitorMusNematodaNerve DegenerationNervous system structureNeuronsObesityOnset of illnessOrganellesOrganismPathway interactionsProteinsProteomeRNA SplicingRegulationReportingRodentRoleSignal PathwaySignal TransductionSignal Transduction PathwayStressTechnologyTestingTherapeuticTimeTissuesTransgenic MiceTranslatingTranslationsUp-RegulationWhole OrganismXBP1 geneage relatedagedbiological adaptation to stresscell typeendoplasmic reticulum stressimprovedmisfolded proteinnervous system disordernormal agingnovelnovel strategiesnucleaseoverexpressionpolypeptidepreventpromoterprotein aggregationprotein misfoldingproteostasispublic health relevanceresponsesensorstressortherapeutic targettranscription factor
中文摘要
英文摘要
DESCRIPTION (provided by applicant): Life is stressful. Cells are repeatedly exposed to various stressors that disrupt protein homeostasis (proteostasis), resulting in protein misfolding and aggregation. To maintain proteostasis, cells have evolved compartment-specific stress responses aimed at repressing translation, inducing chaperone expression, and eliminating damaged proteins. The endoplasmic reticulum (ER) is responsible for the folding of nearly one third of the total human proteome, including almost all of the proteins that are secreted. To protect the function of this essential organelle, the ER can initiate the unfolded protein response
(UPRER) in response to the presence of misfolded proteins. Our laboratory examined the role of the UPRER in aging within the nematode C. elegans and found that the ability to activate the IRE-1/XBP-1 pathway in response to ER stress is abrogated with age. This reduction in UPRER diminishes protection against ER stress-inducing agents. Interestingly, this age-dependent decline in UPRER-mediated protection against ER stress can be prevented by the expression of constitutively active XBP- 1s in the nervous system. Most striking, neuronal expression of XBP-1s in C. elegans leads to cell non- autonomous activation of the UPRER in distal cell types and increases lifespan. It was recently reported that overexpression of XBP-1s in neurons in the hypothalamus induces XBP-1 splicing in the liver and protected mice from diet-induced obesity. Therefore, cell non-autonomous stress signaling is conserved between C. elegans and rodents and regulates key metabolic functions. We hypothesize that neuronal XBP-1s induces a trans-cellular signaling mechanism to coordinate an organism-wide stress response, an improved metabolic state, and a longer lifespan. However, the genetic components required for this signaling mechanism are unknown. In the novel CRISPR-Cas9 genetic screen proposed in aim 1, we will identify essential mediators of the XBP1s transcellular stress response that will provide additional, potentially more specific, therapeutic targets for aging and metabolic disease. Furthermore, we hypothesize that neuronal XBP1s overexpression in mammals will rescue the age-onset loss of UPRER and increase longevity. In Aim 2 we will test our hypothesis using transgenic mice that overexpress XBP1s in hypothalamic neurons. Since one of the greatest challenges facing our healthcare system is the growing economic burden of age-related metabolic and neurologic diseases, elucidating the mechanisms that regulate XBP1s-induced longevity and determining the role of XBP1s in mammals are of paramount significance. Answering the questions described in this proposal will have enormous therapeutic implications not only for normal aging, but also age-onset diseases.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Cell non-autonomous regulation of the unfolded protein response in aging
-
批准号:9132591
-
项目类别:
-
资助金额:$5.43万
-
财政年份:2015
-
负责人:Ashley Elizabeth Frakes
-
依托单位:
Cell non-autonomous regulation of the unfolded protein response in aging
-
批准号:8983126
-
项目类别:
-
资助金额:$5.07万
-
财政年份:2015
-
负责人:Ashley Elizabeth Frakes
-
依托单位:
国内基金
海外基金
登录
查看更多内容
补阳还五汤通过AGE-RAGE通路调控脓毒症免疫失衡的机制与转化研究
-
批准号:JCZRLH202601523
-
项目类别:省市级项目
-
资助金额:--
-
批准年份:2026
-
负责人:
-
依托单位:
靶向递送一氧化碳调控AGE-RAGE级联反应促进糖尿病创面愈合研究
-
批准号:JCZRQN202500010
-
项目类别:省市级项目
-
资助金额:--
-
批准年份:2025
-
负责人:
-
依托单位:
对香豆酸抑制AGE-RAGE-Ang-1通路改善海马血管生成障碍发挥抗阿尔兹海默病作用
-
批准号:2025JJ70209
-
项目类别:省市级项目
-
资助金额:--
-
批准年份:2025
-
负责人:雷芬芳
-
依托单位:
AGE-RAGE通路调控慢性胰腺炎纤维化进程的作用及分子机制
-
批准号:--
-
项目类别:面上项目
-
资助金额:--
-
批准年份:2024
-
负责人:万荣
-
依托单位:
甜茶抑制AGE-RAGE通路增强突触可塑性改善小鼠抑郁样行为
-
批准号:2023JJ50274
-
项目类别:省市级项目
-
资助金额:--
-
批准年份:2023
-
负责人:贺志明
-
依托单位:
蒙药额尔敦-乌日勒基础方调控AGE-RAGE信号通路改善术后认知功能障碍研究
-
批准号:--
-
项目类别:地区科学基金项目
-
资助金额:33万元
-
批准年份:2022
-
负责人:都义日
-
依托单位:
补肾健脾祛瘀方调控AGE/RAGE信号通路在再生障碍性贫血骨髓间充质干细胞功能受损的作用与机制研究
-
批准号:--
-
项目类别:面上项目
-
资助金额:52万元
-
批准年份:2022
-
负责人:叶宝东
-
依托单位:
LncRNA GAS5在2型糖尿病动脉粥样硬化中对AGE-RAGE 信号通路上相关基因的调控作用及机制研究
-
批准号:
-
项目类别:省市级项目
-
资助金额:10.0万元
-
批准年份:2022
-
负责人:于海兵
-
依托单位:
围绕GLP1-Arginine-AGE/RAGE轴构建探针组学方法探索大柴胡汤异病同治的效应机制
-
批准号:81973577
-
项目类别:面上项目
-
资助金额:55.0万元
-
批准年份:2019
-
负责人:辛贵忠
-
依托单位:
AGE/RAGE通路microRNA编码基因多态性与2型糖尿病并发冠心病的关联研究
-
批准号:81602908
-
项目类别:青年科学基金项目
-
资助金额:18.0万元
-
批准年份:2016
-
负责人:刘括
-
依托单位: