interspecies differences

种间差异
  • 文章类型: Journal Article
    特别是对于抗菌剂,血浆蛋白结合(PPB)在破译候选药物的关键特性中起着关键作用。动物模型通常用于新药的临床前开发中,以使用翻译药代动力学/药效学(PK/PD)预测其在人体中的作用。因此,我们比较了不同条件下头孢唑啉的蛋白质结合(PB)以及细菌在体外的生长。研究了头孢唑啉在人体中的PB水平,牛,使用超滤(UF)和平衡透析(ED),在缓冲液和含有20-70%血浆或纯血浆的培养基中使用不同抗生素浓度的大鼠血浆。此外,在含有各种血浆百分比的MuellerHinton肉汤(MHB)中进行细菌生长和时间杀伤测定。发现UF和ED的头孢唑啉与血浆蛋白结合的模式相似。与人血浆相比,头孢唑啉与牛血浆的结合显着降低,而大鼠血浆中的模式与人血浆中的模式更一致。我们的生长曲线分析显示,与70%人血浆或纯MHB相比,70%牛或大鼠血浆对大肠杆菌的生长具有相当大的抑制作用。不出所料,我们用低浓度的头孢唑啉进行的实验表明,与MHB相比,大肠杆菌在20%的人和大鼠血浆中的生长略好,很可能是由于头孢唑啉与血浆中的蛋白质结合。以头孢唑啉为例,我们的研究强调了PB的种间差异,对PK/PD有潜在影响。在将临床前PK/PD数据外推到人类患者之前,应考虑这些发现。
    For antimicrobial agents in particular, plasma protein binding (PPB) plays a pivotal role in deciphering key properties of drug candidates. Animal models are generally used in the preclinical development of new drugs to predict their effects in humans using translational pharmacokinetics/pharmacodynamics (PK/PD). Thus, we compared the protein binding (PB) of cefazolin as well as bacterial growth under various conditions in vitro. The PB extent of cefazolin was studied in human, bovine, and rat plasmas at different antibiotic concentrations in buffer and media containing 20-70% plasma or pure plasma using ultrafiltration (UF) and equilibrium dialysis (ED). Moreover, bacterial growth and time-kill assays were performed in Mueller Hinton Broth (MHB) containing various plasma percentages. The pattern for cefazolin binding to plasma proteins was found to be similar for both UF and ED. There was a significant decrease in cefazolin binding to bovine plasma compared to human plasma, whereas the pattern in rat plasma was more consistent with that in human plasma. Our growth curve analysis revealed considerable growth inhibition of Escherichia coli at 70% bovine or rat plasma compared with 70% human plasma or pure MHB. As expected, our experiments with cefazolin at low concentrations showed that E. coli grew slightly better in 20% human and rat plasma compared to MHB, most probably due to cefazolin binding to proteins in the plasma. Based on the example of cefazolin, our study highlights the interspecies differences of PB with potential impact on PK/PD. These findings should be considered before preclinical PK/PD data can be extrapolated to human patients.
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  • 文章类型: Journal Article
    在大鼠和人类来源的形成血脑屏障(BBB)的脑微血管内皮细胞(BMEC)中研究了瞬时受体电位香草酸1-4(TRPV1-4)的表达和功能。在老鼠身上,通过qRT-PCR在大脑皮层中检测到Trpv1-4,脑微血管,和脑微血管内皮细胞[大鼠脑微血管内皮细胞(rPBMEC)]的原代培养物中。在分离的脑微血管和rPBMEC中发现相似的Trpv1-4表达谱,其顺序如下:Trpv4>Trpv2>Trpv3>Trpv1。在人类中,在BBB细胞系人脑微血管内皮细胞D3细胞(hCMEC/D3)和从成人和儿童脑切除术中分离的BMEC的原代培养物中检测到TRPV1-4[人脑微血管内皮细胞(hPBMEC)],显示在hCMEC/D3细胞和hPBMECs中相似的TRPV1-4表达谱如下:TRPV2>>TRPV4>TRPV1>TRPV3。Western印迹和免疫荧光实验证实,TRPV2和TRPV4是hCMEC/D3细胞中表达最多的TRPV亚型,质膜染色清晰。应用荧光染料Fluo-4AM酯来记录细胞内Ca2+水平。TRPV4功能活性在用特异性激动剂GSK1016790A刺激下介导Ca2+流入中得到证实(范围从3到1000nM,EC50为16.2±4.5nM),它被特定的TRPV4拮抗剂抑制,RN1734(30μM)。相比之下,TRPV1在hCMEC/D3细胞中被轻微激活,如高浓度(3μM)辣椒素诱导的弱Ca2流入所示。一种高效和特异性的TRPV1激动剂。通过与选择性有效的TRPV1拮抗剂辣椒素(20μM)共同处理,热诱导的Ca2内流不会改变,与通过qRT-PCR评估的TRPV1的低表达一致。我们目前的研究揭示了大鼠和人类之间的种间差异。TRPV1-4亚型表达的功能贡献在反映BBB完整性的大鼠和人组织中不相同。TRPV2在人中占主导地位,而TRPV4在大鼠中具有更大的作用。当在脑部疾病的大鼠模型中研究TRPV2或TRPV4的调节剂时,应考虑从基因表达角度的种间差异。
    Transient receptor potential vanilloid 1-4 (TRPV1-4) expression and functionality were investigated in brain microvessel endothelial cells (BMEC) forming the blood-brain barrier (BBB) from rat and human origins. In rat, Trpv1-4 were detected by qRT-PCR in the brain cortex, brain microvessels, and in primary cultures of brain microvessel endothelial cells [rat brain microvessel endothelial cells (rPBMEC)]. A similar Trpv1-4 expression profile in isolated brain microvessels and rPBMEC was found with the following order: Trpv4 > Trpv2 > Trpv3 > Trpv1. In human, TRPV1-4 were detected in the BBB cell line human cerebral microvessel endothelial cells D3 cells (hCMEC/D3) and in primary cultures of BMEC isolated from human adult and children brain resections [human brain microvascular endothelial cells (hPBMEC)], showing a similar TRPV1-4 expression profile in both hCMEC/D3 cells and hPBMECs as follow: TRPV2 > > TRPV4 > TRPV1 > TRPV3. Western blotting and immunofluorescence experiments confirmed that TRPV2 and TRPV4 are the most expressed TRPV isoforms in hCMEC/D3 cells with a clear staining at the plasma membrane. A fluorescent dye Fluo-4 AM ester was applied to record intracellular Ca2+ levels. TRPV4 functional activity was demonstrated in mediating Ca2+ influx under stimulation with the specific agonist GSK1016790A (ranging from 3 to 1000 nM, EC50 of 16.2 ± 4.5 nM), which was inhibited by the specific TRPV4 antagonist, RN1734 (30 μM). In contrast, TRPV1 was slightly activated in hCMEC/D3 cells as shown by the weak Ca2+ influx induced by capsaicin at a high concentration (3 μM), a highly potent and specific TRPV1 agonist. Heat-induced Ca2+ influx was not altered by co-treatment with a selective potent TRPV1 antagonist capsazepine (20 μM), in agreement with the low expression of TRPV1 as assessed by qRT-PCR. Our present study reveals an interspecies difference between Rat and Human. Functional contributions of TRPV1-4 subtype expression were not identical in rat and human tissues reflective of BBB integrity. TRPV2 was predominant in the human whereas TRPV4 had a larger role in the rat. This interspecies difference from a gene expression point of view should be taken into consideration when modulators of TRPV2 or TRPV4 are investigated in rat models of brain disorders.
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  • 文章类型: Journal Article
    Most in vitro reporter gene assays used to assess estrogenic contamination are based on human estrogen receptor α (hERα) activation. However, fish bioassays can have distinct response to estrogenic chemicals and mixtures, questioning the relevance of human-based bioassays for assessing risk to this species. In this study, zebrafish liver cells stably expressing zebrafish ERβ2 (ZELHβ2) and human breast cancer cells expressing hERα (MELN) were used to quantify the estrogenic activity of 25 surface water samples of the Danube River, for which chemicals have been previously quantified. Most samples had a low estrogenic activity below 0.1 ng/L 17β-estradiol-equivalents that was more often detected by MELN cells, while ZELHβ2 response tend to be lower than predicted based on the chemicals identified. Nevertheless, both bioassays quantified well a higher estrogenic activity at two sites, which was confirmed in vivo using a transgenic zebrafish assay. The results are discussed considering the effect-based trigger values proposed for water quality monitoring.
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  • 文章类型: Journal Article
    BACKGROUND: α-Amino-3-hydroxy-5-methyl-4-isoxazole propionate (AMPA) receptor is a primary mediator of fast glutamatergic excitatory signaling in the brain and has been implicated in diverse neuropsychiatric diseases. We recently developed a novel positron emission tomography (PET) ligand, 2-(1-(3-([11C]methylamino)phenyl)-2-oxo-5-(pyrimidin-2-yl)-1,2-dihydropyridin-3-yl) benzonitrile ([11C]HMS011). This compound is a radiolabelled derivative of perampanel, an antiepileptic drug acting on AMPA receptors, and was demonstrated to have promising in vivo properties in the rat and monkey brains. In the current study, we performed a human PET study using [11C]HMS011 to evaluate its safety and kinetics. Four healthy male subjects underwent a 120-min PET scan after injection of [11C]HMS011. Arterial blood sampling and metabolite analysis were performed to obtain parent input functions for three of the subjects using high-performance liquid chromatography. Regional distribution volumes (V Ts) were calculated based on kinetic models with and without considering radiometabolite in the brain. The binding was also quantified using a reference tissue model with white matter as reference.
    RESULTS: Brain uptake of [11C]HMS011 was observed quickly after the injection, followed by a rapid clearance. Three hydrophilic and one lipophilic radiometabolites appeared in the plasma, with notable individual variability. The kinetics in the brain with apparent radioactivity retention suggested that the lipophilic radiometabolite could enter the brain. A dual-input graphical model, an analytical model designed in consideration of a radiometabolite entering the brain, well described the kinetics of [11C]HMS011. A reference tissue model showed small radioligand binding potential (BP*ND) values in the cortical regions (BP*ND = 0-0.15). These data suggested specific binding component of [11C]HMS011 in the brain.
    CONCLUSIONS: Kinetic analyses support some specific binding of [11C]HMS011 in the human cortex. However, this ligand may not be suitable for practical AMPA receptor PET imaging due to the small dynamic range and metabolite in the brain.
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