Structure and function of antimicrobial peptides
Structure and function of antimicrobial peptides
批准号:
7367204
负责人:
Ayyalusamy Ramamoorthy
金额:
$24.5万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-03-01 至 2010-02-28
关键词:
AnisotropyAnti-Bacterial AgentsAntibioticsAntsBacteriaBindingBiological AssayBuffersBullaCAP18 lipopolysaccharide-binding proteinCell NucleusChargeChemicalsChemotaxisCholesterolCircular DichroismClassCodeCommunicable DiseasesComplementConditionCouplingDataDefectDepthDetergentsDeuteriumDevelopmentDifferential Scanning CalorimetryDiseaseDisruptionDrug Delivery SystemsElectrostaticsEnvironmentEpithelialEukaryotic CellGenesGlobal ChangeGoalsGroup StructureHeadHospitalsHumanInflammationInflammatoryInvestigationKnowledgeLeadLifeLipidsLiquid substanceMeasurementMeasuresMembraneMethodsMicellesMicrobeModelingMolecularMolecular ConformationMutateN-terminalNMR SpectroscopyOrganismOryctolagus cuniculusPenicillinsPeptidesPharmaceutical PreparationsPhospholipidsPhosphorousPropertyProtozoaRelative (related person)ReportingResearchResistanceResistance developmentResolutionRoleSafetySaltsSamplingSideSolutionsSpecificitySpectrum AnalysisStructureSurveysSystemTechniquesTemperatureTherapeuticTherapeutic AgentsThermodynamicsThickTimeTimeLineTissuesVancomycinVariantVertebral columnVirusWound HealingYangacyl groupanalytical toolantimicrobialantimicrobial peptidebacterial resistancebasecystic fibrosis patientsdensitydesignfunctional lossfunguskeratinocytekillingsloss of functionmembrane modelmicrobialmutantnatural antimicrobialpeptide structurepeptidomimeticsprogramsresearch studysolid statethree dimensional structuretoolwater solution
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): The development of new active therapeutic agents is of increasing importance as more bacterial strains resistant to existing conventional antibiotics are emerging. Natural antimicrobial peptides represent one successful form of chemical defense that eukaryotic cells use against bacteria, protozoa, fungi, and virus. Antimicrobial peptides kill bacteria by disrupting their membranes, and these peptides may be developed into a new line of defense against infectious diseases. The main goal of the proposed research is to understand the mechanism and selectivity of a human antimicrobial peptide, LL37, and its derivatives. A combination of structural, dynamics, and thermodynamic studies will be used to investigate the mechanism of membrane-disruption, and the important lipid-peptide and peptide-peptide interactions that determine the specificity for disruption of bacterial rather than eukaryotic membranes. The main analytical tool in these studies is solid-state NMR spectroscopy, using a set of techniques which are well-suited to atomic-level structural studies in non-crystalline membrane systems. We will obtain the following high-resolution structural information about the membrane-disrupting mechanism of antimicrobial peptides: (i) secondary structure; (ii) orientation relative to the membrane bilayer normal; and (iii) dynamics and mechanism of membrane-disruption. The data from these three types of measurements will be combined to obtain a detailed picture of the membrane-bound antimicrobial peptides. The experiments will employ a variety of solid-state NMR methods in order to measure chemical shift and dipolar coupling parameters. Antimicrobial peptides will also be characterized in solution (prior to membrane insertion) and in micelles using circular dichroism and solution NMR experiments. Differential scanning calorimetry, deuterium NMR, and phosphorous-31 NMR experiments will also be used to probe local as well as global changes in lipid motional dynamics upon interaction with the antimicrobial peptides. This proposal aims to further our fundamental understanding of the antimicrobial peptide function to develop a new class of peptides that are more potent and selective than LL37 or related peptides. These peptides have therapeutic potential as antibiotics and have particular importance for cystic fibrosis patients.
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A 2D solid-state NMR experiment to resolve overlapping aromatic resonances of thiophene-based nematogens.
二维固态核磁共振实验,用于解决基于噻吩的线虫的重叠芳香族共振。
DOI:
10.1021/ja051160j
发表时间:
2005
期刊:
Journal of the American Chemical Society
影响因子:
15
作者:
[Narasimhaswamy,Tanneru, Lee,Dong-Kuk, Yamamoto,Kazutoshi, Somanathan,Narayanasastri, Ramamoorthy,Ayyalusamy]
通讯作者:
Ramamoorthy,Ayyalusamy
DOI:
10.2174/092986606774502063
发表时间:
2006-01-01
期刊:
PROTEIN AND PEPTIDE LETTERS
影响因子:
1.6
作者:
[Epand, RF, Ramamoorthy, A, Epand, RM]
通讯作者:
Epand, RM
Cell selectivity correlates with membrane-specific interactions: a case study on the antimicrobial peptide G15 derived from granulysin.
细胞选择性与膜特异性相互作用相关:来自颗粒溶素的抗菌肽 G15 的案例研究。
DOI:
10.1016/j.bbamem.2006.02.014
发表时间:
2006
期刊:
Biochimica et biophysica acta
影响因子:
--
作者:
[Ramamoorthy,Ayyalusamy, Thennarasu,Sathiah, Tan,Anmin, Lee,Dong-Kuk, Clayberger,Carol, Krensky,AlanM]
通讯作者:
Krensky,AlanM
DOI:
10.1021/bi100378m
发表时间:
2010-05-18
期刊:
BIOCHEMISTRY
影响因子:
2.9
作者:
[Epand, Raquel F., Maloy, W. Lee, Ramamoorthy, Ayyalusamy, Epand, Richard M.]
通讯作者:
Epand, Richard M.
Structure, topology, and tilt of cell-signaling peptides containing nuclear localization sequences in membrane bilayers determined by solid-state NMR and molecular dynamics simulation studies.
通过固态 NMR 和分子动力学模拟研究确定的细胞信号肽的结构、拓扑和倾斜,其中包含膜双层中的核定位序列。
DOI:
10.1021/bi061895g
发表时间:
2007
期刊:
Biochemistry
影响因子:
2.9
作者:
[Ramamoorthy,Ayyalusamy, Kandasamy,SenthilK, Lee,Dong-Kuk, Kidambi,Srikanth, Larson,RonaldG]
通讯作者:
Larson,RonaldG
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Membrane Interaction and Membrane Mediated Aggregation of Amylin
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