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The Role of SIRT1 in the Metabolic and Psychiatric Disorder Anorexia Nervosa & Investigating Proteostasis Renewal in the Immortal Germline
The Role of SIRT1 in the Metabolic and Psychiatric Disorder Anorexia Nervosa & Investigati...
The Role of SIRT1 in the Metabolic and Psychiatric Disorder Anorexia Nervosa & Investigating Proteostasis Renewal in the Immortal Germline

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자료유형  
 학위논문 서양
최종처리일시  
20250211151122
ISBN  
9798382841212
DDC  
574
저자명  
Robinette, Timothy Matthew.
서명/저자  
The Role of SIRT1 in the Metabolic and Psychiatric Disorder Anorexia Nervosa & Investigating Proteostasis Renewal in the Immortal Germline
발행사항  
[Sl] : Cornell University, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
226 p
주기사항  
Source: Dissertations Abstracts International, Volume: 85-12, Section: B.
주기사항  
Advisor: Cheong, Soon Hon.
학위논문주기  
Thesis (Ph.D.)--Cornell University, 2024.
초록/해제  
요약Aging leads to multiple diseases and eventually death due to a decline in molecular, cellular, and systemic processes. One contributing factor to aging is deregulated nutrient sensing, which is crucial for cellular metabolism. SIRT1 plays an important role in metabolism and brain function, but its expression decreases with age. Upregulating SIRT1 has been suggested as a potential anti-aging therapeutic. However, recent studies have shown potential side effects of increasing SIRT1 expression, including heightened anxiety, hyperactivity, and addiction predisposition. Notably, these side effects resemble those commonly observed in the metabolic and psychiatric disorder Anorexia Nervosa (AN). Therefore, we aimed to determine whether SIRT1 is involved in AN. We exposed brain-specific (BS) knockout (BSKO) and overexpressing (BSOX) SIRT1 mice to an activity-based anorexia (ABA) model of AN. BSOX mice were more susceptible to ABA, while BSKO mice were less so. Given the extensive research on SIRT1, multiple small molecules are readily available for potential therapeutic experiments, allowing for prompt testing both an inhibitor, Selisistat, and an activator, SRT1720. Our findings indicate that Selisistat provided protection from ABA, whereas SRT1720 exacerbated ABA phenotypes. Research from our group and others suggests that SIRT1 upregulates Mao-A and Foxo3a, leading to decreased serotonin levels, increased anxiety, hyperactivity, and addiction. We further propose that SIRT1 inhibits Grin2a, further contributing to increased anxiety and hyperactivity. Overall, our results suggest that inhibiting SIRT1 with Selisistat may offer a potential therapeutic approach for treating AN. Additionally, our work continues to encourage mental health monitoring when modulating SIRT1 levels either for anti-aging purposes or as a therapeutic for specific diseases. One other major contributing factor to aging is the loss of proteostasis, impairing the cell's ability to function and leading to accumulation of misfolded proteins and protein aggregates. However, this loss of proteostasis is not passed down through generations; if it were, species would become extinct. This phenomenon, known as germline immortality, suggests that the germline is either shielded from damage or actively clears it to prevent transmission from one generation to the next. In examining the proteome, we observed that mouse oocytes accumulate aggregated proteins as they age. Consequently, we investigated whether oocytes clear these aggregates. Initially, we examined both the oocytes and their polar bodies, finding that the oocytes did not transfer the aggregates to the polar bodies for degradation. Subsequently, we stained oocytes at the germinal vesicle (GV) stage, during GV breakdown, and in meiosis II-arrested oocytes. Our findings revealed that while the number of aggregates decreased in older oocytes, the total volume remained consistent, indicating that the smaller aggregates were combining to form larger aggregates. Furthermore, despite the aggregates not being degraded, they colocalized with autophagosome membrane protein LC3B and lysosome membrane protein LAMP1. This suggests that the aggregates are being primed for degradation following meiosis I reactivation. Interestingly, these observations contrast with the degradation patterns seen in maturing oocytes of C. elegans, suggesting a unique timeline in mouse oocytes where degradation preparations occur post-fertilization. Nonetheless, our research, alongside similar studies, emphasizes the potential of meiotic cells as instrumental models for understanding proteostasis restoration in aged cells.
일반주제명  
Cellular biology
일반주제명  
Psychology
일반주제명  
Mental health
일반주제명  
Aging
키워드  
Germinal vesicle
키워드  
Proteostasis
키워드  
Cellular metabolism
키워드  
Anorexia Nervosa
기타저자  
Cornell University Biomedical and Biological Sciences
기본자료저록  
Dissertations Abstracts International. 85-12B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aRobinette,  Timothy  Matthew.▼0(orcid)0000-0001-9050-2327
■24510▼aThe  Role  of  SIRT1  in  the  Metabolic  and  Psychiatric  Disorder  Anorexia  Nervosa  &  Investigating  Proteostasis  Renewal  in  the  Immortal  Germline
■260    ▼a[Sl]▼bCornell  University▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a226  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-12,  Section:  B.
■500    ▼aAdvisor:  Cheong,  Soon  Hon.
■5021  ▼aThesis  (Ph.D.)--Cornell  University,  2024.
■520    ▼aAging  leads  to  multiple  diseases  and  eventually  death  due  to  a  decline  in  molecular,  cellular,  and  systemic  processes.  One  contributing  factor  to  aging  is  deregulated  nutrient  sensing,  which  is  crucial  for  cellular  metabolism.  SIRT1  plays  an  important  role  in  metabolism  and  brain  function,  but  its  expression  decreases  with  age.  Upregulating  SIRT1  has  been  suggested  as  a  potential  anti-aging  therapeutic.  However,  recent  studies  have  shown  potential  side  effects  of  increasing  SIRT1  expression,  including  heightened  anxiety,  hyperactivity,  and  addiction  predisposition.  Notably,  these  side  effects  resemble  those  commonly  observed  in  the  metabolic  and  psychiatric  disorder  Anorexia  Nervosa  (AN).  Therefore,  we  aimed  to  determine  whether  SIRT1  is  involved  in  AN.  We  exposed  brain-specific  (BS)  knockout  (BSKO)  and  overexpressing  (BSOX)  SIRT1  mice  to  an  activity-based  anorexia  (ABA)  model  of  AN.  BSOX  mice  were  more  susceptible  to  ABA,  while  BSKO  mice  were  less  so.  Given  the  extensive  research  on  SIRT1,  multiple  small  molecules  are  readily  available  for  potential  therapeutic  experiments,  allowing  for  prompt  testing  both  an  inhibitor,  Selisistat,  and  an  activator,  SRT1720.    Our  findings  indicate  that  Selisistat  provided  protection  from  ABA,  whereas  SRT1720  exacerbated  ABA  phenotypes.  Research  from  our  group  and  others  suggests  that  SIRT1  upregulates  Mao-A  and  Foxo3a,  leading  to  decreased  serotonin  levels,  increased  anxiety,  hyperactivity,  and  addiction.  We  further  propose  that  SIRT1  inhibits  Grin2a,  further  contributing  to  increased  anxiety  and  hyperactivity.  Overall,  our  results  suggest  that  inhibiting  SIRT1  with  Selisistat  may  offer  a  potential  therapeutic  approach  for  treating  AN.  Additionally,  our  work  continues  to  encourage  mental  health  monitoring  when  modulating  SIRT1  levels  either  for  anti-aging  purposes  or  as  a  therapeutic  for  specific  diseases.    One  other  major  contributing  factor  to  aging  is  the  loss  of  proteostasis,  impairing  the  cell's  ability  to  function  and  leading  to  accumulation  of  misfolded  proteins  and  protein  aggregates.  However,  this  loss  of  proteostasis  is  not  passed  down  through  generations;  if  it  were,  species  would  become  extinct.  This  phenomenon,  known  as  germline  immortality,  suggests  that  the  germline  is  either  shielded  from  damage  or  actively  clears  it  to  prevent  transmission  from  one  generation  to  the  next.  In  examining  the  proteome,  we  observed  that  mouse  oocytes  accumulate  aggregated  proteins  as  they  age.  Consequently,  we  investigated  whether  oocytes  clear  these  aggregates.  Initially,  we  examined  both  the  oocytes  and  their  polar  bodies,  finding  that  the  oocytes  did  not  transfer  the  aggregates  to  the  polar  bodies  for  degradation.  Subsequently,  we  stained  oocytes  at  the  germinal  vesicle  (GV)  stage,  during  GV  breakdown,  and  in  meiosis  II-arrested  oocytes.  Our  findings  revealed  that  while  the  number  of  aggregates  decreased  in  older  oocytes,  the  total  volume  remained  consistent,  indicating  that  the  smaller  aggregates  were  combining  to  form  larger  aggregates.  Furthermore,  despite  the  aggregates  not  being  degraded,  they  colocalized  with  autophagosome  membrane  protein  LC3B  and  lysosome  membrane  protein  LAMP1.  This  suggests  that  the  aggregates  are  being  primed  for  degradation  following  meiosis  I  reactivation.  Interestingly,  these  observations  contrast  with  the  degradation  patterns  seen  in  maturing  oocytes  of  C.  elegans,  suggesting  a  unique  timeline  in  mouse  oocytes  where  degradation  preparations  occur  post-fertilization.  Nonetheless,  our  research,  alongside  similar  studies,  emphasizes  the  potential  of  meiotic  cells  as  instrumental  models  for  understanding  proteostasis  restoration  in  aged  cells.
■590    ▼aSchool  code:  0058.
■650  4▼aCellular  biology
■650  4▼aPsychology
■650  4▼aMental  health
■650  4▼aAging
■653    ▼aGerminal  vesicle
■653    ▼aProteostasis
■653    ▼aCellular  metabolism
■653    ▼aAnorexia  Nervosa
■690    ▼a0379
■690    ▼a0621
■690    ▼a0347
■690    ▼a0493
■71020▼aCornell  University▼bBiomedical  and  Biological  Sciences.
■7730  ▼tDissertations  Abstracts  International▼g85-12B.
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■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17160823▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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