Modulating the PI3K Pathway During the Managing of Wound Contracture and Accelerated Healing
Modulating the PI3K Pathway During the Managing of Wound Contracture and Accelerated Healing
批准号:
9922962
负责人:
Rogerio Moraes Castilho
金额:
$35.1万
依托单位国家:
美国
项目类别:
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-06-19 至 2022-04-30
关键词:
AchievementAffectAnimal ModelBurn injuryCell ProliferationCell physiologyCessation of lifeCicatrixClinicalContractureDehydrationDevelopmentDown-RegulationEpidermisEpithelialEpitheliumExtracellular MatrixFDA approvedFRAP1 geneFamily suidaeFibroblastsFire - disastersFoundationsGene ExpressionGenesGeneticGoalsGrantHealthHome environmentHomeostasisHumanIndividualInfectionInflammationInflammatory InfiltrateInjuryKnowledgeMaintenanceMechanicsMetabolismMolecularMusMyofibroblastOperative Surgical ProceduresOrganOrganismOutcomePTEN genePathway interactionsPatientsPharmacologic ActionsPharmacologyPhosphotransferasesPhysiologicalPlayPopulationProcessPropertyQuality of lifeResearchRoleSignal PathwaySignal TransductionSirolimusSiteSkinSkin graftSmall Interfering RNASocial FunctioningTestingTherapeutic EffectTimeTissuesTranslationsbaseburn modelburn scarsburn woundcell growthcircadian pacemakercytokinedesignepidermal stem cellepithelial injuryepithelial stem cellglobal healthhealingimprovedin vivoinhibitor/antagonistinjuredinnovationmTOR InhibitormTOR Signaling PathwaymTOR inhibitionmigrationnovelnovel therapeutic interventionnovel therapeuticspre-clinicalpreventpsychologicregenerativeresponsesiRNA deliverystem cell biologystem cell populationstem cellstherapeutic effectivenesstissue repairwoundwound bedwound closurewound healingwound treatment
中文摘要
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英文摘要
The skin is the largest organ in the body with remarkable physiological and social functions. The epidermal
portion of the skin is responsible for waterproofing the body and acting as a mechanical barrier; thus, it is
associated with vital functions. Upon injury, the immediate response of the epidermis and its stem cells aims at
the reestablishment of local homeostasis; however extensive injuries, often observed in burn patients, may
overwhelm the capacity to heal. If the epidermis-driven homeostasis is not restored, the organism undergoes
dehydration and increased chances for infection and death. New therapeutic strategies aiming at accelerated
epithelial migration and accumulation of epithelial stem cells are in great need to improve the health of burn
patients and the achievement of better clinical outcomes. Our research bridges new findings in the field of stem
cell biology with recent understanding of the role of the phosphatidylinositide 3-kinases (PI3K) molecular
mechanisms in response to epithelial injury. PTEN was initially identified as a negative regulator of the PI3K
signaling, the main regulator of cell growth, metabolism, and survival. By targeted disrupting the PTEN gene
from the epithelial layer of the skin containing stem cells, we observed a brisk activation of cellular proliferation
associated with increased migration. Moreover, we found that disruption of PTEN from the epidermis also
results in the accumulation of epithelial stem cells indicating a critical role of the PI3K signaling pathway in the
maintenance of epithelial homeostasis and response to external injuries. Here, we propose a novel therapeutic
strategy to treat wounds by increasing the population of skin stem cells at the donor site before the isolation
and graft in the injured recipient site. Furthermore, we will determine the therapeutic effectiveness of
pharmacological action on the PI3K signaling during the re-epithelization and scarring after burn. Human-
relevant preclinical animal models will be used to test our hypothesis on the efficacy of the PI3K in the
treatment of burn. This application is significant; once that will explore novel druggable pathways capable of
accelerating epithelial migration and wound closure, induce accumulation of epidermal stem cells, and reduce
the development of wound scar.
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Modulating the PI3K Pathway During the Managing of Wound Contracture and Accelerated Healing
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批准号:10226838
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项目类别:
-
资助金额:$35.1万
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财政年份:2017
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负责人:Rogerio Moraes Castilho
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依托单位:
Modulating the PI3K Pathway During the Managing of Wound Contracture and Accelerated Healing
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批准号:9511897
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项目类别:
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资助金额:$35.06万
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财政年份:2017
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负责人:Rogerio Moraes Castilho
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依托单位:
海外基金