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関連する概念動画

Eukaryotic Compartmentalization01:37

Eukaryotic Compartmentalization

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One of the distinguishing features of eukaryotic cells is that they contain membrane-bound organelles, such as the nucleus and mitochondria, that carry out specialized functions. Since biological membranes are only selectively permeable to solutes, they help create a compartment with controlled conditions inside an organelle. These microenvironments are tailored to the organelle's specific functions and help isolate them from the surrounding cytosol.
For example, lysosomes in the animal...
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Eukaryotic Compartmentalizations01:46

Eukaryotic Compartmentalizations

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One of the distinguishing features of eukaryotic cells is that they contain membrane-bound organelles, such as the nucleus and mitochondria, that carry out specialized functions. Since biological membranes are only selectively permeable to solutes, they help create a compartment with controlled conditions inside an organelle. These microenvironments are tailored to the organelle's specific functions and help isolate them from the surrounding cytosol.
For example, lysosomes in the animal cells...
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Mitochondrial Protein Sorting01:39

Mitochondrial Protein Sorting

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Mitochondria are double-membrane organelles of the eukaryotes involved in cellular metabolism, signaling, ATP synthesis, and programmed cell death.  Each of these processes requires specific proteins and enzymes that must be correctly sorted to the right mitochondrial subcompartment for the proper functioning of the organelle.
Most of these mitochondrial proteins are encoded by the nucleus and imported to the mitochondria as unfolded or loosely folded precursors. Mitochondrial precursors...
5.8K
Nuclear Protein Sorting01:34

Nuclear Protein Sorting

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Nuclear protein sorting is the selective trafficking of histones, polymerases, gene regulatory proteins into the nucleus and exporting RNAs and ribosomes to the cytosol. It is a tightly controlled process that regulates gene expression within a cell.
Proteins targeted to the nucleus carry nuclear localization signals or NLS recognized by import receptors in the cytosol. Similarly, proteins with nuclear export signals are recognized by export receptors. Import and export receptors are...
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Two-dimensional Gel Electrophoresis01:22

Two-dimensional Gel Electrophoresis

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Two-dimensional gel electrophoresis is a high-resolution protein separation method first introduced by O' Farrell and Klose in 1975. This method involves protein separation by two dimensions, mass and charge, making it more accurate than one-dimensional gel electrophoresis.
The first dimension separation uses the isoelectric focusing or IEF technique performed on immobilized pH gradient (IPG) strips that separate proteins according to their isoelectric points.
Biological samples, such...
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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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Synthesis and Characterization of Supramolecular Colloids
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多層自己分類による階層的に分割された超分子ゲル

Yiming Wang1, Matija Lovrak1, Qian Liu1

  • 1Department of Chemical Engineering , Delft University of Technology , van der Maasweg 9 , 2629 HZ Delft , The Netherlands.

Journal of the American Chemical Society
|December 20, 2018
PubMed
まとめ

科学者は自己分類する 超分子ゲルを作り 細胞の分割を模倣しました このボトムアップアプローチは,単純な構成要素から階層的に構造化された機能的な材料の自発的な形成を可能にします.

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科学分野:

  • 超分子化学
  • 材料科学
  • 合成生物学

背景:

  • 階層的な区分けは細胞機能に不可欠ですが,合成システムでは複製することは困難です.
  • 複雑な細胞構造を作り出すための 経路を提供しています

研究 の 目的:

  • 階層的に分断された超分子ゲルを開発するために,ボトムアップ戦略を使用します.
  • 材料の製造のための自発的な多層の自己分類を調査する.

主な方法:

  • 組み合わさらないブロックから2つの異なる分子凝固器の局所形成.
  • ゲル繊維を分離したマイクロドメインに分類する.
  • その結果生じるマイクロスケールの区画化されたゲルネットワークの特徴.

主要な成果:

  • 階層的に分断された超分子ゲルを成功裏に形成した.
  • ゲル繊維の自発的な多層の自己分類が示された.
  • 自己分類によってマイクロスケールの区画化を達成した.

結論:

  • 多層の自主分類は,階層的に構造化された機能的な材料を作成するための実行可能なボトムアップアプローチを提供します.
  • これらのシステムは,細胞内組織と合成生物学における潜在的な応用に関する洞察を提供します.