The role of mitochondrial dysfunction in ARDS after AKI
The role of mitochondrial dysfunction in ARDS after AKI
批准号:
10515303
负责人:
Mark Lawrence Hepokoski
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-10-01 至 2024-03-31
关键词:
Acute Renal Failure with Renal Papillary NecrosisAcute Respiratory Distress SyndromeAdmission activityAffectAlveolar MacrophagesAlveolusAnimalsAreaAutophagocytosisBasic ScienceBiogenesisBiologyBronchoalveolar Lavage FluidCaringCause of DeathCell DeathCellsChimeric ProteinsCirculationClinicalClinical ResearchComplicationCritical IllnessCross SyndromeCytoplasmDNA DamageDNA FragmentationDataDedicationsDevelopmentElementsEndothelial CellsEnzyme-Linked Immunosorbent AssayEpithelial CellsFluorescein-5-isothiocyanateFoundationsFutureGenus HippocampusGoalsHealthcare SystemsImpairmentIn VitroIncidenceInflammasomeInflammationInjuryInjury to KidneyInterventionIntravenousInulinInvestigationIschemiaKidneyKineticsKnockout MiceLeadLinkLungMechanical ventilationMechanicsMentorsMetabolicMitochondriaMitochondrial DNAModelingMolecularMusNatural ImmunityOrganOrgan failurePathway interactionsPatientsPatternPhysiciansPlasmaPredispositionPrognosisProteobacteriaProtocols documentationPublishingQuality of CareRenal functionReperfusion TherapyResearchResearch TrainingRespirationRespiratory FailureRiskRodentRoleRouteScientistTLR6 geneTLR9 geneTestingTrainingTranslational ResearchTransmission Electron MicroscopyUrineVentilatorVentilator-induced lung injuryVeteransWestern Blottingcareerdesignexperimental studyextracellularhemodynamicsimprovedimproved outcomein vivointravenous administrationkidney dysfunctionlung injurymilitary veteranmitochondrial dysfunctionmitochondrial membranemortalitymultidisciplinaryneutrophilnew therapeutic targetnovelnovel strategiesnovel therapeuticspreventprogramspulmonary functionrenal ischemiarepair enzymerepairedresponseskillssystemic inflammatory responsetargeted treatmenttherapeutic targettherapy developmenttooltranslational studyventilation
中文摘要
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英文摘要
Acute kidney injury (AKI) occurs in 30% of critically ill veterans, and the 6-year mortality rate is greater
than 50%1,22. Interestingly, the leading causes of death in AKI are non-renal complications, and respiratory
failure is the most serious non-renal complication of AKI with a worse prognosis than all other remote organ
failures4. It is now recognized that there are mechanisms of respiratory failure in AKI beyond volume overload,
such as the development of the acute respiratory distress syndrome (ARDS)2-3. Investigating the mechanisms of
ARDS due to AKI may lead to the development of novel strategies to improve the mortality of AKI and ARDS.
Regarding mechanistic considerations, the kidney is a highly metabolic organ in the body with an
exceptionally high mitochondrial content, therefore mitochondrial dysfunction is a key element in various forms
of AKI5,7. Mitochondrial dysfunction as seen in AKI leads to fragmented mitochondria which function as damage
associated molecular patterns (DAMPs) that propagate systemic inflammation and injury12,13. Mitochondrial
DNA (mtDNA) is the most well-described mtDAMP, and has been shown to promote innate immunity and
systemic inflammation via activation of toll-like receptor 9 (TLR9)18. MtDNA is also known to cause lung injury
when administered intravenously to healthy animals18. I hypothesize that mitochondrial dysfunction is a
mechanism of ARDS due to AKI. Specifically, 1) Mitochondrial dysfunction in AKI leads to mtDNA
fragmentation and release into circulation. 2) Circulating mtDNA released from the kidney leads to lung injury
via TLR9 activation on pulmonary cells and neutrophils. AKI patients are also twice as likely to require
mechanical ventilation compared to patients without AKI6, and mtDNA damage is a known mechanism of
ventilator induced lung injury (VILI)20. I further hypothesize that AKI increases susceptibility to VILI, and VILI
after AKI worsens lung and kidney injury by potentiating mitochondrial dysfunction in both organs.
I will utilize the ischemia-reperfusion (IR) model of AKI to test these hypotheses. Mitochondrial
function, dynamics, autophagy, and cell death will be evaluated in the lung and kidney after IR-AKI. MtDNA
levels will be evaluated in urine, plasma, and bronchoalveolar lavage fluid (BALF). Detailed, mechanistic studies
of mtDNA on pulmonary epithelial and endothelial cells, alveolar macrophages, and neutrophils will be
performed in vitro. Intravenous and intratracheal mtDNA administration will be evaluated in C57BL/6 and
TLR9 knockout mice in vivo. Western blot, ELISA, quantitative PCR, transmission electron microscopy, FACS
analysis, lung mechanics assessments via a flexiVent® rodent ventilator, XF96 Seahorse® extracellular flux
analyzer, and FITC-inulin kinetics will be used to assess lung and kidney injury, mitochondrial function, and
mtDNA release after IR-AKI. I will also investigate response to mechanical ventilation in mice with and without
IR-AKI to evaluate the potential role of VILI on lung and kidney injury and mitochondrial function after AKI.
Finally, I will attempt to mitigate lung-kidney injury using a mtDNA repair enzyme.
My immediate goal is to investigate mitochondrial dysfunction as a mechanism of ARDS due to AKI as I
believe that these studies will lead to novel therapies that will benefit veterans suffering with critical illness. My
long term career goal is to develop the skills needed to become an independent physician-scientist at the VA
dedicated to lung-kidney interactions. I have a strong clinical background in caring for veterans as a pulmonary-
intensivist, and 2 years of dedicated research training. During the past 2 years I have produced and published
novel data supporting my hypotheses, and garnered support from a world-class, multidisciplinary, mentoring
team at the VA San Diego that will train me in basic, translational, and clinical research. The research training
proposed in this application combined with didactic training in AKI, ARDS, and mitochondrial biology will
provide me with the tools necessary to develop my independence as a physician-scientist at the VA San Diego.
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DOI:
10.1152/ajplung.00478.2019
发表时间:
2020
期刊:
American journal of physiology. Lung cellular and molecular physiology
影响因子:
--
作者:
[Hepokoski,Mark]
通讯作者:
Hepokoski,Mark
DOI:
10.1016/j.xcrm.2023.100935
发表时间:
2023-02-21
期刊:
CELL REPORTS MEDICINE
影响因子:
14.3
作者:
[Lam, Michael Tun Yin, Duttke, Sascha H., Odish, Mazen F., Le, Hiep D., Hansen, Emily A., Nguyen, Celina T., Trescott, Samantha, Kim, Roy, Deota, Shaunak, Chang, Max W., Patel, Arjun, Hepokoski, Mark, Alotaibi, Mona, Rolfsen, Mark, Perofsky, Katherine, Warden, Anna S., Foley, Jennifer, Ramirez, Sydney I., Dan, Jennifer M., Abbott, Robert K., Crotty, Shane, Alexander, Laura E. Crotty, Malhotra, Atul, Panda, Satchidananda, Benner, Christopher W., Coufal, Nicole G.]
通讯作者:
Coufal, Nicole G.
DOI:
10.1097/cce.0000000000000720
发表时间:
2022-07
期刊:
Critical care explorations
影响因子:
--
作者:
[Vemuri SV, Rolfsen ML, Sykes AV, Takiar PG, Leonard AJ, Malhotra A, Spragg RG, Macedo E, Hepokoski ML]
通讯作者:
Hepokoski ML
Very Low Driving-Pressure Ventilation in Patients With COVID-19 Acute Respiratory Distress Syndrome on Extracorporeal Membrane Oxygenation: A Physiologic Study.
COVID-19患者的急性呼吸窘迫综合征对体外膜氧合的急性呼吸窘迫综合征的驾驶压力通气非常低:一项生理研究。
DOI:
10.1053/j.jvca.2022.11.033
发表时间:
2023-03
期刊:
Journal of cardiothoracic and vascular anesthesia
影响因子:
2.8
作者:
[]
通讯作者:
The role of mitochondrial dysfunction in ARDS after AKI
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批准号:10292954
-
项目类别:
-
资助金额:$0.0万
-
财政年份:2018
-
负责人:Mark Lawrence Hepokoski
-
依托单位:
The role of mitochondrial dysfunction in ARDS after AKI
-
批准号:9562392
-
项目类别:
-
资助金额:$0.0万
-
财政年份:2018
-
负责人:Mark Lawrence Hepokoski
-
依托单位:
The role of mitochondrial dysfunction in ARDS after AKI
-
批准号:10048637
-
项目类别:
-
资助金额:$0.0万
-
财政年份:2018
-
负责人:Mark Lawrence Hepokoski
-
依托单位:
海外基金