13.3
원형질막의 화학적, 물리적 특성으로 인해 선택적으로 투과할 수 있습니다. 원형질막에는 소수성 영역과 친수성 영역이 모두 있으므로 물질은 두 영역을 모두 통과할 수 있어야 합니다. 막의 소수성 영역은 하전된 이온과 같은 물질을 밀어냅니다. 따라서 이러한 물질이 막을 성공…
하전된 이온과 같은 용질은 막의 소수성 층에 의해 반발되어 확산을 멈춥니다. 촉진 수송 또는 촉진 확산 과정에서 분자는 추가 에너지 없이 확산을 가능하게 하는 채널과 운반 단백질을 통해 멤브레인을 가로질러 이동할 수 있습니다.
첫 번째 유형인 채널 단백질은 하전된 분자가 통과할 수 있는 친수성 공극을 형성하여 멤브레인의 소수성 층을 피합니다. 이러한 채널은 항상 열려 있거나 흐름을 제어하는 메커니즘에 의해 게이트됩니다.
두 번째 유형인 캐리어(carrier)는 단백질 형태를 변화시키는 특정 용질에 결합하여 용질이 구배를 따라 이동할 수 있도록 합니다. 이러한 이유로 수송 속도는 농도 구배가 아니라 사용 가능한 운반 단백질의 수에 따라 달라집니다.
단순한 확산보다 더 복잡하지만, 촉진된 수송은 채널 단백질이 초당 수천만 개의 분자를 이동하고 운반 단백질이 초당 1,000에서 100만 개의 분자를 이동시키는 놀라운 속도로 확산을 가능하게 합니다.
View the full transcript and gain access to JoVE Core videos
Q1: Why can't charged ions simply diffuse across the plasma membrane?
Charged ions are repelled by the hydrophobic layer of the membrane, which prevents them from crossing. Since plasma membranes contain both hydrophobic and hydrophilic regions, charged substances cannot traverse the hydrophobic core without assistance. This is why special membrane transport proteins are required to enable ions to cross successfully.
Q2: What is the difference between channel proteins and carrier proteins in facilitated transport?
Channel proteins form a hydrophilic pore allowing charged molecules to pass through and avoid the hydrophobic layer. Carrier proteins bind to specific solutes, causing a conformational change that enables movement down the concentration gradient. While channel proteins move tens of millions of molecules per second, carrier proteins move 1,000 to a million molecules per second.
Q3: How do gated channels control the movement of ions across membranes?
Gated channels remain closed until a particular ion or substance binds to the channel or another mechanism triggers opening. These channels are found in muscle and nerve cells, where controlled opening and closing regulates ion concentration changes. Without this regulated barrier, muscle contraction would not occur efficiently.
Q4: What determines the rate of transport when using carrier proteins?
The rate of carrier protein transport depends on the number of carrier proteins available, not the concentration gradient. When a carrier protein binds to a specific solute, it undergoes a conformational change enabling movement down the gradient. This means transport speed is limited by protein availability rather than how steep the concentration difference is.
Q5: Why is facilitated transport faster than simple diffusion?
Facilitated transport enables diffusion to occur at incredible rates through specialized membrane proteins. Channel proteins move tens of millions of molecules per second, while carrier proteins move 1,000 to a million molecules per second. This dramatic increase in speed allows cells to transport essential substances efficiently without requiring additional energy.
Q6: What role do aquaporins play in membrane transport?
Aquaporins are channel proteins that specifically facilitate the transport of water through the plasma membrane. As channel proteins, they form a hydrophilic pore allowing water molecules to pass through while avoiding the hydrophobic layer. This selective transport is essential for maintaining proper water balance across cell membranes.
Q7: How does facilitated transport relate to the significance of membrane transport in cells?
Facilitated transport enables cells to move essential charged ions and molecules across membranes without energy expenditure, supporting critical cellular functions. By allowing rapid, selective transport of substances like ions and water, facilitated transport maintains cellular homeostasis and enables processes like muscle contraction. Understanding the significance of membrane transport reveals how cells regulate their internal environment.