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多細胞生物では、細胞は協調して働くために通信する必要があります。細胞が通信する方法の 1 つは、他の細胞と直接接触することです。隣接する細胞を接続する接触点は、細胞間接合と呼ばれます。
細胞間接合は、真菌、植物、動物の細胞の特徴です。ただし、さまざまな種類の細胞には、さまざまなタイプの接合が見られま…
植物細胞は、細胞の形状を維持しながら細胞のコミュニケーションを妨げる硬い細胞壁を持っています。細胞壁の微細なチャネルであるプラスモデスマタは、隣接する細胞の細胞質を直接接続し、コミュニケーションのための分子交換を可能にします。
一次プラスモデスマタは細胞分裂中に作成され、二次プラスモデスマタは隣接する細胞の既存の細胞壁の間に形成されます。
Plasmodesmataは膜で裏打ちされており、デスモチューブルと呼ばれる細いチューブのような中央構造が含まれています。デスモチューブルは、隣接する細胞をつなぐERの延長部によって形成されます。
サイトゾルは2つの細胞間を自由に流れ、シンプラストと呼ばれる連続したネットワークを形成します。
細胞は、plasmodesmataの直径を調節することにより、分子の通過を制御します。
多糖類であるカロースが蓄積すると、チャネルが収縮し、水と小分子のみが通過できるようになります。
カロースが分解すると、チャネルが拡張し、より大きな分子が通過できるようになります。
プラスモデスマタを分解することにより、細胞は隣接する細胞との共生接続を失います。
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Q1: What are plasmodesmata and why do plant cells need them?
Plasmodesmata are microscopic channels that connect the cytoplasm of adjacent plant cells, enabling direct molecular exchange and communication. Because rigid cell walls maintain plant cell shape but hinder communication, plasmodesmata create a continuous cytoplasmic network called the symplast, allowing nutrients and signaling molecules to flow freely between cells throughout the plant.
Q2: How do primary and secondary plasmodesmata differ in their formation?
Primary plasmodesmata form during cell division, while secondary plasmodesmata develop later between existing cell walls of neighboring cells. Both types create passageways connecting adjacent cells, but secondary plasmodesmata allow cells to establish new communication links after division, enabling flexible network expansion as tissues develop.
Q3: What is the desmotubule and what role does it play in plasmodesmata?
The desmotubule is a narrow, tube-like central structure within plasmodesmata formed by an extension of the endoplasmic reticulum that connects adjacent cells. It divides the plasmodesma into compartments while allowing cytosol to flow freely around it, maintaining the continuous symplastic network essential for plant cell communication.
Q4: How do plants regulate which molecules pass through plasmodesmata?
Plants control plasmodesmata permeability by regulating callose, a polysaccharide that accumulates to constrict channels, restricting passage to water and small molecules. When callose breaks down, channels dilate, allowing larger molecules like proteins and RNA to pass. This dynamic regulation enables selective molecular transport based on cellular needs.
Q5: What macromolecules can be transported through plasmodesmata?
Plasmodesmata transport specific macromolecules including receptor-like protein kinases, signaling molecules, transcription factors, and RNA-protein complexes. Beyond water and small nutrients, these versatile channels enable long-distance communication by moving regulatory molecules that coordinate plant growth, development, and responses to environmental signals.
Q6: How does plasmodesmata density change as plant cells grow?
As plant cells grow, the density of plasmodesmata decreases unless cells produce secondary plasmodesmata to maintain communication networks. This dynamic adjustment ensures adequate cell-to-cell connectivity despite increasing cell size, preventing isolation of growing cells from the symplastic network and preserving coordinated cellular function.
Q7: What happens to plant cells when plasmodesmata are degraded?
When plasmodesmata are degraded, cells lose symplastic connectivity with their neighbors, severing the continuous cytoplasmic network that enables molecular exchange. This disruption prevents communication and isolates affected cells from the broader plant communication system, potentially affecting coordinated cellular functions and nutrient distribution throughout tissues.