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pH responsive granulocyte colony-stimulating factor variants with implications for treating Alzheimer's disease and other central nervous system disorders

机译:pH响应性粒细胞集落刺激因子变异体,可用于治疗阿尔茨海默氏病和其他中枢神经系统疾病

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Systemic injection of granulocyte colony-stimulating factor (G-CSF) has yielded encouraging results in treating Alzheimer's Disease (AD) and other central nervous system (CNS) disorders. Making G-CSF a viable AD therapeutic will, however, require increasing G-CSF's ability to stimulate neurons within the brain. This objective could be realized by increasing transcytosis of G-CSF across the blood brain barrier (BBB). An established correlation between G-CSF receptor (G-CSFR) binding pH responsiveness and increased recycling of G-CSF to the cell exterior after endocytosis motivated development of G-CSF variants with highly pH responsive G-CSFR binding affinities. These variants will be used in future validation of our hypothesis that increased BBB transcytosis can enhance G-CSF therapeutic efficacy. Flow cytometric screening of a yeast-displayed library in which G-CSF/G-CSFR interface residues were mutated to histidine yielded a G-CSF triple His mutant (L109H/D110H/Q120H) with highly pH responsive binding affinity. This variant's K-D, measured by surface plasmon resonance (SPR), increases similar to 20-fold as pH decreases from 7.4 to below histidine's pK(a) of similar to 6.0; an increase 2-fold greater than for previously reported G-CSF His mutants. Cell-free protein synthesis (CFPS) enabled expression and purification of soluble, bioactive G-CSF triple His variant protein, an outcome inaccessible via Escherichia coli inclusion body refolding. This purification and bioactivity validation will enable future identification of correlations between pH responsiveness and transcytosis in BBB cell culture model and animal experiments. Furthermore, the library screening and CFPS methods employed here could be applied to developing other pH responsive hematopoietic or neurotrophic factors for treating CNS disorders.
机译:全身注射粒细胞集落刺激因子(G-CSF)在治疗阿尔茨海默氏病(AD)和其他中枢神经系统(CNS)疾病方面取得了令人鼓舞的结果。然而,使G-CSF成为可行的AD治疗药物将需要提高G-CSF刺激大脑神经元的能力。该目标可以通过增加跨血脑屏障(BBB)的G-CSF的胞吞作用来实现。 G-CSF受体(G-CSFR)结合pH响应性与内吞作用后G-CSF向细胞外部循环再利用的增加之间建立的相关性,促使具有高pH响应性的G-CSFR结合亲和力的G-CSF变异体发展。这些变体将用于未来我们的假说,即增加BBB转胞吞作用可增强G-CSF治疗功效的假说。对其中G-CSF / G-CSFR接口残基突变为组氨酸的酵母展示文库进行流式细胞术筛选,可得到具有高pH响应结合亲和力的G-CSF三联组氨酸突变体(L109H / D110H / Q120H)。通过表面等离振子共振(SPR)测量,此变体的K-D随着pH从7.4降低至组氨酸的pK(a)降低至6.0以下而增加了约20倍;比以前报道的G-CSF His突变体增加了2倍。无细胞蛋白质合成(CFPS)能够表达和纯化可溶的,具有生物活性的G-CSF三联His变体蛋白质,这是通过大肠杆菌包涵体重折叠无法获得的结果。这种纯化和生物活性验证将使将来能够识别BBB细胞培养模型和动物实验中的pH响应性和胞吞作用之间的相关性。此外,此处采用的文库筛选和CFPS方法可用于开发其他pH响应的造血或神经营养因子,以治疗CNS疾病。

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