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Context-Dependent Hydrophobic Interactions in α-Peptides
Context-Dependent Hydrophobic Interactions in α-Peptides
Context-Dependent Hydrophobic Interactions in α-Peptides

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자료유형  
 학위논문 서양
최종처리일시  
20250211150914
ISBN  
9798382839974
DDC  
540
저자명  
Qiu, Xinjie.
서명/저자  
Context-Dependent Hydrophobic Interactions in α-Peptides
발행사항  
[Sl] : Cornell University, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
372 p
주기사항  
Source: Dissertations Abstracts International, Volume: 85-12, Section: B.
주기사항  
Advisor: Abbott, Nicholas.
학위논문주기  
Thesis (Ph.D.)--Cornell University, 2024.
초록/해제  
요약The hydrophobic interaction drives the association of non-polar molecules in water. It governs the assembly of biomolecules, and plays a central role in biological phenomena ranging from protein folding to viral-host cell interactions. In these contexts, domains defined by non-polar amino acids are found proximal to polar and charged groups, thus generating nanoscale patterns of chemical functional groups. Atomistic simulations have advanced our understanding of how hydrophobic interactions arise in such systems, but few experiments permit unambiguous conclusions regarding the effects of chemical heterogeneity on hydrophobic interactions. One prior set of studies used conformationally rigid β-peptide oligomers and single-molecule force measurements to reveal that the identity of charged groups placed adjacent to non-polar domains can profoundly impact hydrophobic interactions encoded by the non-polar domains. However, the impact of chemical heterogeneity on hydrophobic interactions has not been characterized in experimental systems beyond β-peptide oligomers.This thesis will focus on the use of single-molecule force measurements to understand hydrophobic interactions encoded by oligopeptides formed from a-amino acids. In contrast to prior studies of oligomers of β-peptides, the oligopeptides to be discussed in this talk possess conformations that are coupled to their interactions. First, single-molecule force measurements of α-peptide sequences capable of forming parallel coiled-coil dimers will be described to explore how charged residue identity (lysine versus arginine) influences their hydrophobic interactions. These measurements, when combined with infrared spectroscopic characterization of peptide conformations, reveal that lysine-bearing sequences assume conformations that encode stronger hydrophobic interactions than arginine-containing sequences. Importantly, the results reveal that the influence of charged group identity on hydrophobic interactions, which had previously been observed using conformationally rigid β-peptide oligomers, extends to the interactions of α-peptides that form coiled-coil complexes. Second, the capability to characterize coiled-coil complexes is used to provide insight into hydrophobic interactions encoded by heptad repeat sequences proximal to the N-terminus (HRN) and C-terminus (HRC) within the SARS-CoV-2 spike (S) protein. HRC and HRN play an important role in the fusion of host cell and viral membranes: a disordered HRC trimer has been proposed to pack against the grooves of a coiled-coil HRN trimer to create a six-helix bundle (6HB) necessary for successful membrane fusion and infection. Single molecule force measurements reveal that hydrophobic interactions dominate intermolecular forces acting between HRC and/or HRN sequences, and that the interaction between HRC and HRN gives rise to stronger hydrophobic interactions than their self-interactions. This result suggests a thermodynamic driving force for the formation of the 6HB in which HRC packs against the HRN trimer. Finally, single molecule force measurements of hydrophobic interactions mediated by fusion peptide (FP) sequences within SARS-CoV-2 and MERS-CoV S proteins will be described. These measurements reveal that a 11 amino acid SARS-2 FP sequence exhibits a three-fold stronger hydrophobic interaction than its MERS counterpart due to substitution of a single amino acid (Phe versus Ala). The outsized influence of this single amino acid substitution arises from the strong coupling between hydrophobic interaction and peptide conformation.
일반주제명  
Chemistry
일반주제명  
Chemical engineering
일반주제명  
Organic chemistry
키워드  
Coronavirus
키워드  
Hydrophobic interactions
키워드  
Peptides
키워드  
Self-assembly
기타저자  
Cornell University Chemistry and Chemical Biology
기본자료저록  
Dissertations Abstracts International. 85-12B.
전자적 위치 및 접속  
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MARC

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■006m          o    d                
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■020    ▼a9798382839974
■035    ▼a(MiAaPQ)AAI30812742
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a540
■1001  ▼aQiu,  Xinjie.▼0(orcid)0000-0001-6131-3586
■24510▼aContext-Dependent  Hydrophobic  Interactions  in  α-Peptides
■260    ▼a[Sl]▼bCornell  University▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a372  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-12,  Section:  B.
■500    ▼aAdvisor:  Abbott,  Nicholas.
■5021  ▼aThesis  (Ph.D.)--Cornell  University,  2024.
■520    ▼aThe  hydrophobic  interaction  drives  the  association  of  non-polar  molecules  in  water.  It  governs  the  assembly  of  biomolecules,  and  plays  a  central  role  in  biological  phenomena  ranging  from  protein  folding  to  viral-host  cell  interactions.  In  these  contexts,  domains  defined  by  non-polar  amino  acids  are  found  proximal  to  polar  and  charged  groups,  thus  generating  nanoscale  patterns  of  chemical  functional  groups.  Atomistic  simulations  have  advanced  our  understanding  of  how  hydrophobic  interactions  arise  in  such  systems,  but  few  experiments  permit  unambiguous  conclusions  regarding  the  effects  of  chemical  heterogeneity  on  hydrophobic  interactions.  One  prior  set  of  studies  used  conformationally  rigid  β-peptide  oligomers  and  single-molecule  force  measurements  to  reveal  that  the  identity  of  charged  groups  placed  adjacent  to  non-polar  domains  can  profoundly  impact  hydrophobic  interactions  encoded  by  the  non-polar  domains.  However,  the  impact  of  chemical  heterogeneity  on  hydrophobic  interactions  has  not  been  characterized  in  experimental  systems  beyond  β-peptide  oligomers.This  thesis  will  focus  on  the  use  of  single-molecule  force  measurements  to  understand  hydrophobic  interactions  encoded  by  oligopeptides  formed  from  a-amino  acids.  In  contrast  to  prior  studies  of  oligomers  of  β-peptides,  the  oligopeptides  to  be  discussed  in  this  talk  possess  conformations  that  are  coupled  to  their  interactions.  First,  single-molecule  force  measurements  of  α-peptide  sequences  capable  of  forming  parallel  coiled-coil  dimers  will  be  described  to  explore  how  charged  residue  identity  (lysine  versus  arginine)  influences  their  hydrophobic  interactions.  These  measurements,  when  combined  with  infrared  spectroscopic  characterization  of  peptide  conformations,  reveal  that  lysine-bearing  sequences  assume  conformations  that  encode  stronger  hydrophobic  interactions  than  arginine-containing  sequences.  Importantly,  the  results  reveal  that  the  influence  of  charged  group  identity  on  hydrophobic  interactions,  which  had  previously  been  observed  using  conformationally  rigid  β-peptide  oligomers,  extends  to  the  interactions  of  α-peptides  that  form  coiled-coil  complexes.  Second,  the  capability  to  characterize  coiled-coil  complexes  is  used  to  provide  insight  into  hydrophobic  interactions  encoded  by  heptad  repeat  sequences  proximal  to  the  N-terminus  (HRN)  and  C-terminus  (HRC)  within  the  SARS-CoV-2  spike  (S)  protein.  HRC  and  HRN  play  an  important  role  in  the  fusion  of  host  cell  and  viral  membranes:  a  disordered  HRC  trimer  has  been  proposed  to  pack  against  the  grooves  of  a  coiled-coil  HRN  trimer  to  create  a  six-helix  bundle  (6HB)  necessary  for  successful  membrane  fusion  and  infection.  Single  molecule  force  measurements  reveal  that  hydrophobic  interactions  dominate  intermolecular  forces  acting  between  HRC  and/or  HRN  sequences,  and  that  the  interaction  between  HRC  and  HRN  gives  rise  to  stronger  hydrophobic  interactions  than  their  self-interactions.  This  result  suggests  a  thermodynamic  driving  force  for  the  formation  of  the  6HB  in  which  HRC  packs  against  the  HRN  trimer.  Finally,  single  molecule  force  measurements  of  hydrophobic  interactions  mediated  by  fusion  peptide  (FP)  sequences  within  SARS-CoV-2  and  MERS-CoV  S  proteins  will  be  described.  These  measurements  reveal  that  a  11  amino  acid  SARS-2  FP  sequence  exhibits  a  three-fold  stronger  hydrophobic  interaction  than  its  MERS  counterpart  due  to  substitution  of  a  single  amino  acid  (Phe  versus  Ala).  The  outsized  influence  of  this  single  amino  acid  substitution  arises  from  the  strong  coupling  between  hydrophobic  interaction  and  peptide  conformation.
■590    ▼aSchool  code:  0058.
■650  4▼aChemistry
■650  4▼aChemical  engineering
■650  4▼aOrganic  chemistry
■653    ▼aCoronavirus
■653    ▼aHydrophobic  interactions
■653    ▼aPeptides
■653    ▼aSelf-assembly
■690    ▼a0485
■690    ▼a0542
■690    ▼a0490
■71020▼aCornell  University▼bChemistry  and  Chemical  Biology.
■7730  ▼tDissertations  Abstracts  International▼g85-12B.
■790    ▼a0058
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17160127▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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