Multiscale simulations of environment-induced conformational transitions in peptides: folding, partitioning and aggregation
Multiscale simulations of environment-induced conformational transitions in peptides: folding, partitioning and aggregation
批准号:
236706339
负责人:
Professorin Dr. Christine Peter
金额:
$0.0万
依托单位:
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2013
资助国家:
德国
项目状态:
已结题
起止时间:
2012-12-31 至 2016-12-31
中文摘要
从生物医学研究、食品科学到生物材料应用,多肽在各个领域发挥着越来越重要的作用。例如,两亲性多肽可用于药物输送,帮助穿透细胞膜。在这里,另一个好处是多肽可能是刺激反应的,即一个人可以通过改变pH或离子强度来诱导折叠/去折叠。由于多肽易于形成定义明确的结构聚集体,因此经常用作生物和仿生材料的模板。为了系统地以可控的方式利用多肽,了解序列、二级结构的形成以及折叠与环境条件和周围介质(pH、离子强度、亲水性/疏水性、界面的存在、其他多肽的存在等)的耦合之间的关系是非常重要的。在这里,分子模拟可以提供对相关相互作用、溶剂化热力学等的微观理解。然而,原子模型本身是有限的,特别是当涉及聚集现象时,需要粗粒度(CG)模型来获得相关的系统尺寸和时间尺度。为了提供多肽聚集体和基于多肽的材料中结构形成的真实表示,聚集、折叠和分配的相互作用需要在CG模型中反映出来。这是一个可以被视为一种可转让性挑战的问题。可转换性是指由于自由度的减少,CG模型强烈依赖于状态点(热力学条件、浓度、化学成分等)的问题。在那里他们被设置了参数。这是CG模型最严重的局限性之一,这也是理解和解决与可转移性相关的问题是CG模型开发中最重要的问题之一的原因。在这个项目中,我们计划开发基于多肽的生物材料的可转移CG模型,它能够再现环境变化时正确的构象行为。我们计划开发一种如何将CG模型参数化的策略,该模型捕捉了肽折叠、环境变化(如pH或离子强度、聚集、与界面的相互作用以及水和疏水介质之间的分配)之间的耦合和相互影响。为此,选择了三个目标多肽,它们分别集中在上述不同的方面:(I)二苯丙氨酸在聚集或与亲水/疏水界面相互作用时表现出反式/顺式构象变化,而(Ii)Gala和(Iii)KL多肽表现出受周围介质影响的螺旋/螺旋转变。
英文摘要
Peptides play an increasingly important role in various fields, from biomedical research, food science, to biomaterials applications. For example, amphiphilic peptides can be used for drug delivery purposes to help penetrate cell membranes. Here, an additional benefit is that peptides may be stimulus responsive, i.e. one can induce folding/unfolding by a change in pH or ion strength. Thanks to their proneness to form well-defined structured aggregates, peptides frequently serve as templates for biological and biomimetic materials. In order to systematically make use of peptides in a well-controlled manner, it is of immense importance to understand the relationship between sequence, secondary-structure formation, and the coupling of the folding to environmental conditions and to changes in the surrounding medium (pH, ion strength, hydrophilicity/ hydrophobicity, presence of an interface, presence of other peptides, etc.). Here, molecular simulation can provide microscopic understanding of the relevant interactions, solvation thermodynamics, etc. However, atomistic models alone are limited, and - in particular when aggregation phenomena are involved - coarse grained (CG) models are required to give access to the relevant system sizes and timescales.In order to provide a realistic representation of structure formation in peptide aggregates and peptide-based materials, the interplay of aggregation, folding and partitioning needs to be reflected in the CG model. This is a problem that can be viewed as a form of transferability challenge. Transferability refers to the issue that - due to the reduction of the number of degrees of freedom - CG models strongly depend on the state point (thermodynamic conditions, concentrations, chemical compositions etc.) where they were parameterized. This is one of the most severe limitations of CG models, which is the reason why the understanding and solving of transferability-related problems is one of the most important issues in the development of CG models.In this project we plan to develop transferable CG models for peptide-based biomaterials which are capable of reproducing the correct conformational behavior upon environment change. We plan to develop a strategy how to parameterize CG models that capture the coupling between and mutual influence of peptide folding, environment change such as pH or ion strength, aggregation, interaction with interfaces, and partitioning between aqueous and hydrophobic media. To this end, three target peptides were selected which allow to separately focus on different of the above aspects: (i) diphenylalanine exhibits a trans/cis conformational change upon aggregation or interaction with a hydrophilic/hydrophobic interface, while the (ii) GALA and (iii) KL peptides show a helix/coil transitions that are influenced by the surrounding media.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
Representing environment-induced helix-coil transitions in a coarse grained peptide model
代表粗粒肽模型中环境诱导的螺旋-螺旋转变
DOI:
10.1140/epjst/e2016-60147-8
发表时间:
2016
期刊:
The European Physical Journal Special Topics
影响因子:
--
作者:
[C. Dalgicdir, C. Globisch, M. Sayar, C. Peter]
通讯作者:
C. Peter
Hierarchical simulation of biopolymers in contact with mineral surfaces
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批准号:128490657
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项目类别:Priority Programmes
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资助金额:$0.0万
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财政年份:2009
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负责人:Professorin Dr. Christine Peter
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依托单位:
Development of coarse grained simulation models to study structure formation and self assembly in peptide systems
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批准号:76490208
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项目类别:Independent Junior Research Groups
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资助金额:$0.0万
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财政年份:2008
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负责人:Professorin Dr. Christine Peter
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依托单位:
国内基金
海外基金
Galaxy Analytical Modeling
Evolution (GAME) and cosmological
hydrodynamic simulations.
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批准号:
-
项目类别:省市级项目
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资助金额:10.0万元
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批准年份:2025
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负责人:Antonios Katsianis
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依托单位: