9.2
生物利用度是指药物以其活性形式进入全身循环的程度和速率。其中,“程度”指进入循环的药物量,而“速率”指药物进入循环的快慢。生物利用度受多种因素影响,这些因素对于优化药物制剂、给药方案及治疗效果具有关键意义。
药物与制剂的理化性质
药物的溶解度、稳定性及溶出速率对其吸收有显著影响。难溶性药物可通过特殊…
药物的生物利用度可能受到多种因素的影响。
理化性质,例如溶解度差,可能会降低吸收。这一局限性可通过使用缓释或肠溶包衣剂型来解决。
药物在酸性胃环境中的稳定性也会影响其生物利用度。酸不稳定的药物应以缓冲制剂或肠溶包衣制剂的形式给药,以防止降解。
首过代谢显著降低药物的全身暴露水平。例如,普萘洛尔会经历广泛的代谢,从而减少其全身暴露。而像伐昔洛韦这样的前体药物则代谢转化为阿昔洛韦,提高其生物利用度。
食物也会影响药物吸收。食物可提高异维A酸的全身暴露水平,但会降低去羟肌苷的生物利用度。
最后,药物-药物相互作用可通过代谢酶和转运体影响药物暴露。例如,酶抑制剂通过减缓药物代谢而提高其全身水平,而酶诱导剂则加速代谢,从而降低血浆药物浓度。
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Q1: How do physicochemical properties affect drug bioavailability?
Physicochemical properties like poor solubility significantly decrease drug absorption and reduce bioavailability. Specialized formulations such as controlled-release or enteric-coated forms can address these limitations. For example, Neoral® microemulsion enhances cyclosporine bioavailability compared to conventional formulations by improving dissolution and absorption rates.
Q2: Why does stomach acid reduce the bioavailability of certain drugs?
Acid-labile drugs degrade in the low pH environment of the stomach, significantly reducing bioavailability. Buffered or enteric-coated formulations protect these drugs from gastric acidity, maintaining therapeutic levels. Didanosine uses these strategies to prevent degradation and ensure adequate systemic exposure for therapeutic benefit.
Q3: What is first-pass metabolism and how does it impact drug levels?
First-pass metabolism occurs when drugs are extensively metabolized in the liver during their first pass through portal circulation, significantly reducing systemic availability. Propranolol undergoes extensive first-pass metabolism, reducing its systemic exposure. Prodrugs like valacyclovir bypass this limitation by converting to active forms after absorption, enhancing bioavailability.
Q4: How do food and drug interactions influence bioavailability?
Food can enhance, reduce, or have no significant impact on drug bioavailability. Food increases isotretinoin absorption but reduces didanosine bioavailability. Drug-drug interactions also affect bioavailability through metabolizing enzymes: enzyme inhibitors like ritonavir increase systemic levels by slowing metabolism, while inducers like rifampin accelerate it, reducing plasma concentrations.
Q5: What role do transport proteins play in drug bioavailability?
Transport proteins such as P-glycoprotein significantly influence drug absorption and clearance. Drugs that inhibit or are substrates for transport proteins, like digoxin, show variable bioavailability depending on transporter activity. Understanding transporter interactions is essential for predicting drug exposure and optimizing therapeutic outcomes.
Q6: How do age and disease states affect drug bioavailability?
Aging alters bioavailability through reduced liver mass, decreased perfusion, and declining renal function, potentially increasing drug levels in geriatric patients. Renal and hepatic impairments significantly affect drug elimination: renally excreted drugs show increased bioavailability in kidney dysfunction, while hepatic impairment reduces metabolism, causing systemic drug accumulation.
Q7: What strategies address bioavailability problems in drug formulation?
Multiple strategies overcome bioavailability challenges. Controlled-release and enteric-coated formulations improve solubility and protect from gastric degradation. Prodrug design enhances absorption by converting to active forms post-absorption. Understanding bioavailability enhancement determination and conceptual approaches helps optimize formulations, dosing regimens, and therapeutic outcomes for effective patient care.