3.13
단일 구획 모델은 인체를 단순화하여 표현한 것입니다. 이 모델은 신체가 잘 혼합된 단일 개방형 구획으로 기능한다고 가정합니다. 약물을 정맥으로 투여하면 체내로 들어가 빠르게 균일하게 분포됩니다. 그런 다음 약물은 생체 변형 및 제거를 거쳐 궁극적으로 신체를 떠납니다.…
단일 구획 모델은 인체가 잘 교반된 단일 열린 구획이라고 가정합니다.
IV 볼루스를 통해 투여된 약물이 체내에 유입되면 장벽 없이 즉시 분포하고 생체 내 변형 및 제거를 통해 체외로 배출됩니다.
격실의 부피는 겉보기 분포량(pressure volume of distribution)으로, 투여된 용량이 빠르고 균일하게 분포할 수 있는 이론적인 부피입니다.
신체로부터의 약물 제거는 1차 동역학을 따르며, 여기서 제거율은 신체의 약물 농도에 정비례합니다.
시간이 지남에 따라 약물 혈장 농도는 기하급수적으로 감소하며 조직 약물 농도는 그에 비례하여 감소합니다.
주어진 용량의 지속적인 주입은 기하급수적으로 정상 상태 값을 달성합니다. 주입이 중단되면 농도가 기하급수적으로 떨어집니다.
동일한 용량이 여러 개의 동일한 용량으로 투여되는 경우, 평균 정상 상태 농도와 정상 상태에 도달하는 데 필요한 시간은 연속 주입과 유사합니다.
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Q1: What is the single-compartment model in pharmacokinetics?
The single-compartment model represents the human body as a single well-stirred open compartment where drugs distribute instantaneously without barriers. When administered intravenously, a drug rapidly distributes uniformly throughout this compartment and then undergoes biotransformation and elimination. This simplified model assumes uniform drug concentration across the body at any given time.
Q2: How does drug clearance work in the single-compartment model?
Drug clearance from the body follows first-order kinetics, meaning the elimination rate is directly proportional to the drug concentration present. As concentration decreases, the elimination rate also decreases proportionally. This results in exponential decline of both plasma and tissue drug concentrations over time, following drug elimination the concept of clearance.
Q3: What is the apparent volume of distribution?
The apparent volume of distribution is a theoretical volume into which an administered drug dose can rapidly and uniformly distribute within the single-compartment model. It represents the relationship between the amount of drug in the body and its plasma concentration. This volume helps predict how extensively a drug distributes throughout the body.
Q4: How does continuous infusion reach steady state in the single-compartment model?
During continuous infusion, drug concentration rises exponentially until reaching a steady-state value where the infusion rate equals the elimination rate. Once steady state is achieved, plasma concentration remains constant. If infusion stops, the concentration falls exponentially following first-order kinetics throughout the body.
Q5: How do multiple equal doses compare to continuous infusion?
When a drug is administered in multiple equal doses, the mean steady-state concentration and time required to reach steady state are similar to those achieved with continuous infusion. Both dosing approaches result in comparable pharmacokinetic profiles, though multiple dosing creates fluctuations around the mean concentration value.
Q6: Why is the single-compartment model considered a simplified representation?
The single-compartment model assumes the body functions as one well-mixed compartment with instantaneous, uniform drug distribution and no physiological barriers. In reality, drugs distribute at different rates into various tissues and organs. This simplification makes calculations manageable for basic pharmacokinetic predictions while acknowledging limitations.
Q7: What happens to drug concentration after an IV bolus in the single-compartment model?
After intravenous bolus administration, the drug distributes instantaneously and uniformly throughout the compartment. Plasma concentration then declines exponentially as the drug undergoes biotransformation and elimination. The tissue drug concentration follows a similar exponential decline pattern proportional to the plasma concentration changes.