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関連する概念動画

Dihybrid Crosses01:18

Dihybrid Crosses

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Overview
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Unsymmetric Bending01:18

Unsymmetric Bending

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Unsymmetrical bending occurs when the bending moment applied to a structural member does not align with its principal axis. This misalignment leads to complex stress distributions and deflection patterns that differ from those in symmetrical bending, and are essential for designing structures to withstand different loading conditions. In unsymmetrical bending, the neutral axis—where stress is zero—does not necessarily align with the geometric axes of the cross-section. The...
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Law of Independent Assortment02:03

Law of Independent Assortment

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While Mendel’s Law of Segregation states that the two alleles for one gene are separated into different gametes, a different question of how different genes are inherited remains. For example, is the gene for tall plants inherited with the gene for green peas? Mendel asked this question by experimenting with a dihybrid cross; a cross in which both parents are homozygous for two distinct traits resulting in an F1 generation that are heterozygous for both traits.
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Overview of Protein Sorting and Transport01:45

Overview of Protein Sorting and Transport

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Eukaryotic cells have different membrane-bound organelles with distinct protein requirements. The process by which proteins are targeted to a specific organelle is called protein sorting.
Protein sorting can be of two types: signal-based sorting and vesicle-based trafficking. In signal-based sorting, specific amino acid sequences called sorting signals target proteins to the proper location inside the cell either via gated transport or by protein translocation.  In gated transport, folded...
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Trihybrid Crosses02:27

Trihybrid Crosses

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Trihybrid Crosses
Some of Mendel’s crosses examined three pairs of contrasting characteristics. Such a cross is called a trihybrid cross. A trihybrid cross is a combination of three individual monohybrid crosses. For example, plant height (tall vs. short), seed shape (round vs. wrinkled), and seed color (yellow vs. green).
The F1 generation plants of a trihybrid cross are heterozygous for all three traits and produce eight gametes. Upon self-fertilization, these gametes have an equal...
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Separation of Sister Chromatids02:17

Separation of Sister Chromatids

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At the transition from prophase to metaphase, there is a reduction in cohesion along the chromosomal arms, resulting in the resolution of sister chromatids. However, residual cohesin connections remain to hold the sister chromatids together until the transition from metaphase to anaphase. The residual connection prevents any premature separation of sister chromatids, blocking the risks of aneuploidy within the daughter cells.
At the onset of anaphase, separase, a proteolytic enzyme, is...
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Embryo Rescue Protocol for Interspecific Hybridization in Squash
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キュルビチューリル で 自動 分類 する"二重 層"

Héctor Barbero1, Nathan A Thompson1, Eric Masson1

  • 1Department of Chemistry and Biochemistry , Ohio University , Athens , Ohio 45701 , United States.

Journal of the American Chemical Society
|December 14, 2019
PubMed
まとめ

プラチナ (II) コンプレックスとキュルビット (Cucurbit) [8]ウリルはダイナミックアセンブリを形成する. チオラートリガンドは自己分類の速度と結果を制御し,リガンド交換運動と熱力学的分布の両方に影響を与えます.

科学分野:

  • 超分子化学
  • 協調化学
  • 材料科学

背景:

  • キュルビット[8]ウリル (CB[8]) は,安定したインクルージョン複合体を形成できるマクロサイクル宿主である.
  • テルピリジル (tpy) リガンドを持つプラチナ (II) 複合体は,その調整特性で知られている.
  • 自己分類は,異なる構成要素が選択的に特定の構造に組み合わされるプロセスです.

研究 の 目的:

  • Cucurbit[8]uril (CB[8]) マクロサイクル内のプラチナ (((II) 複合体の自己分類行動を調査する.
  • 超分子組成のダイナミクスを調節するチオラートリガンドの役割を調査する.
  • 超分子交換とリガンド交換の相互作用を理解する.

主な方法:

  • テルピリジル (tpy) と様々なチオラートリガンドを含むプラチナ (II) コンプレックス合成.
  • 2: 1プラチナ ((II) -CB[8]組成の形成.
  • 核磁共振 (NMR) スペクトロスコーピーを用いた三元組の特徴化.
  • 自己分類過程の運動と熱力学的分析

主要な成果:

  • プラチナ ((II) コンプレックスとCB[8]は2:1アセンブリを形成し,積み重ねられた金属中心を持つジムを作り出します.

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Self-assembly of Complex Two-dimensional Shapes from Single-stranded DNA Tiles
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Quantitative SERS Detection of Uric Acid via Formation of Precise Plasmonic Nanojunctions within Aggregates of Gold Nanoparticles and Cucurbit[n]uril
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  • 混合ジメルの自己分類は,超分子とリガンド交換を通じて最大10の三元組成につながります.
  • チオラートリガンドは,リガンド交換運動と熱力学的分布を著しく影響し,より大きなチオラートが遅延率を持つ.
  • リンガンド交換は超分子交換よりも遅いので,より高次元のアセンブリを含むアソシエーション経路を示唆する.
  • 結論:

    • シアロ酸リガンドは,CB [8] 封じ込めプラチナII) コンプレックスにおける自己分類の運動学と熱力学を制御する上で重要な役割を果たします.
    • 二重層の自己分類システムは,リガンド設計に基づいて調整可能なアセンブリ形成を示しています.
    • これらのダイナミックなプロセスを理解することで 複雑な超分子構造の設計に 洞察が得られます