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相关概念视频

Introduction to Structures01:30

Introduction to Structures

A structure is defined as a system of interconnected members designed to support or transfer forces and successfully withstand the loads acting on them. The internal forces of a structure can be determined by decomposing the structure and analyzing the free-body diagrams of the individual members or of a combination of members. This helps in understanding the structural elements' behavior and ensuring that the structure is stable and can withstand the subjected loads.
There are three main...
Machines01:19

Machines

Machines are complex structures consisting of movable, pin-connected multi-force members that work together to transmit forces. One example of a machine is the cutting plier, which is used to cut wires by applying forces to its handles. When equal and opposite forces are exerted on the handles of the cutting plier, they cause the cutting edges to come together and apply equal and opposite reaction forces on the wire, which are greater than the applied forces.
A free-body diagram of the...
Design of Prismatic Beams for Bending01:23

Design of Prismatic Beams for Bending

The design of prismatic beams, structural elements with a uniform cross-section, focuses on ensuring safety and structural integrity under load. The design process begins by determining the allowable stress, either from material properties tables, or by dividing the material's ultimate strength by a safety factor. This safety factor is essential for accommodating uncertainties, and varies depending on the material—timber, steel, or concrete—with each having unique strength and stress...
Structural Steel Products01:24

Structural Steel Products

Structural steel products are created within a structural mill. The process begins with a beam blank that is reheated and then fed through a series of rollers. These rollers progressively shape the metal into its final form. Adjusting the spacings between the rollers allows for the production of different sections with the same nominal dimensions.
Once shaped, the steel's final form emerges as a continuous length, which is then segmented by a hot saw into manageable pieces. These segments are...
Brick Cutting Techniques01:08

Brick Cutting Techniques

Brick-cutting techniques involve various tools and methods to shape bricks for construction. A mason's hammer with a chisel-pointed end is used for basic shaping through sharp, precise strikes. For more complex shapes requiring higher precision, a power saw with a water-cooled diamond blade is used.
Cut bricks are categorized by size. Bricks cut to half their original length are called half-bats, while those cut to three-fourths their length are known as three-fourth bats.
Special types of cut...

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相关实验视频

Updated: Jun 19, 2026

Constructing Thioether/Vinyl Sulfide-tethered Helical Peptides Via Photo-induced Thiol-ene/yne Hydrothiolation
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量身定制的结构化体设计,采用关键切割机方法.

Yan C Leyva1, Marcelo D T Torres2,3,4,5, Carlos A Oliva1

  • 1Computer Science Department, Center for Scientific Research and Higher Education at Ensenada (CICESE), Ensenada, Mexico.

Nature machine intelligence
|October 27, 2025
PubMed
概括

关键切割机 (KCM) 是一种用于蛋白质和设计的新计算工具. 它有效地创建具有特定结构和功能的新型宏分子,克服当前生成模型的局限性.

关键词:
抗微生物药物是一种抗微生物药物.计算模型是计算模型.

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科学领域:

  • * 计算生物学和蛋白质工程.
  • *开发新的宏分子设计平台.

背景情况:

  • *当前的蛋白质和的设计方法往往依赖于计算上昂贵的生成模型.
  • *这些模型在培训时间,修改成本和纳入特定设计要求方面存在挑战.

研究的目的:

  • * 引入关键切割机 (KCM),这是一个基于优化的平台,用于计算蛋白质和设计.
  • * 为工程宏分子提供一种成本效益高,灵活的替代生成模型.

主要方法:

  • *KCM采用基于优化的方法,代地使用结构预测来实现所需的骨干几何.
  • * 它结合了分布算法的估计,以优化基于几何,物理化学和能量标准的序列.
  • * 该平台允许用户定义的需求无集成到目标功能中.

主要成果:

  • *KCM展示了精确的骨干几何设计,用于各种二次结构,包括α螺旋和β片.
  • * 该平台需要最小的计算资源 (单个GPU) 并避免了高的再培训成本.
  • *在抗微生物设计中的概念验证应用产生了一种具有强大的体外活性和体内疗效的候选药物.

结论:

  • * 关键切割机 (KCM) 提供了一个强大而灵活的工具,用于新的蛋白质和的设计.
  • * 它可以有效地复制和扩展现有模板中的结构-功能关系.
  • * KCM为医学,生物技术和材料科学领域的应用带来了重大进展.