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基于活性的纳米诊疗平台对创伤性脑损伤中钙蛋白酶活性的空间测量和抑制。

Spatial Measurement and Inhibition of Calpain Activity in Traumatic Brain Injury with an Activity-Based Nanotheranostic Platform.

机构信息

Department of Bioengineering, University of California, San Diego, La Jolla, California 92093, United States.

出版信息

ACS Nano. 2024 Sep 17;18(37):25565-25576. doi: 10.1021/acsnano.4c06052. Epub 2024 Sep 5.

Abstract

Traumatic brain injury (TBI) is a major public health concern that can result in long-term neurological impairments. Calpain is a calcium-dependent cysteine protease that is activated within minutes after TBI, and sustained calpain activation is known to contribute to neurodegeneration and blood-brain barrier dysregulation. Based on its role in disease progression, calpain inhibition has been identified as a promising therapeutic target. Efforts to develop therapeutics for calpain inhibition would benefit from the ability to measure calpain activity with spatial precision within the injured tissue. In this work, we designed an activity-based nanotheranostic (ABNT) that can both sense and inhibit calpain activity in TBI. To sense calpain activity, we incorporated a peptide substrate of calpain flanked by a fluorophore/quencher pair. To inhibit calpain activity, we incorporated calpastatin peptide, an endogenous inhibitor of calpain. Both sensor and inhibitor peptides were scaffolded onto a polymeric nanoscaffold to create our ABNT. We show that in the presence of recombinant calpain, our ABNT construct is able to sense and inhibit calpain activity. In a mouse model of TBI, systemically administered ABNT can access perilesional brain tissue through passive accumulation and inhibit calpain activity in the cortex and hippocampus. In an analysis of cellular calpain activity, we observe the ABNT-mediated inhibition of calpain activity in neurons, endothelial cells, and microglia of the cortex. In a comparison of neuronal calpain activity by brain structure, we observe greater ABNT-mediated inhibition of calpain activity in cortical neurons compared to that in hippocampal neurons. Furthermore, we found that apoptosis was dependent on both calpain inhibition and brain structure. We present a theranostic platform that can be used to understand the regional and cell-specific therapeutic inhibition of calpain activity to help inform drug design for TBI.

摘要

创伤性脑损伤 (TBI) 是一个重大的公共卫生问题,可导致长期的神经功能障碍。钙蛋白酶是一种钙依赖性半胱氨酸蛋白酶,在 TBI 后几分钟内被激活,持续的钙蛋白酶激活被认为是导致神经退行性变和血脑屏障失调的原因。基于其在疾病进展中的作用,钙蛋白酶抑制已被确定为一种有前途的治疗靶点。为了开发钙蛋白酶抑制的治疗方法,需要能够在损伤组织内具有空间精度测量钙蛋白酶活性。在这项工作中,我们设计了一种基于活性的纳米治疗剂 (ABNT),可以在 TBI 中同时感知和抑制钙蛋白酶活性。为了感知钙蛋白酶活性,我们将钙蛋白酶的肽底物与荧光团/猝灭剂对结合。为了抑制钙蛋白酶活性,我们将钙蛋白酶抑制剂肽(钙蛋白酶的内源性抑制剂)掺入其中。传感器和抑制剂肽都被支架到聚合物纳米支架上,形成我们的 ABNT。我们表明,在重组钙蛋白酶存在下,我们的 ABNT 构建体能够感知和抑制钙蛋白酶活性。在 TBI 的小鼠模型中,通过被动积累系统给予 ABNT 可以穿过病变周围的脑组织,并抑制皮质和海马体中的钙蛋白酶活性。在对皮质细胞内钙蛋白酶活性的分析中,我们观察到 ABNT 介导的钙蛋白酶活性抑制作用在神经元、内皮细胞和小胶质细胞中。在对脑结构中神经元钙蛋白酶活性的比较中,我们观察到 ABNT 介导的皮质神经元钙蛋白酶活性抑制作用大于海马神经元。此外,我们发现细胞凋亡依赖于钙蛋白酶抑制和脑结构。我们提出了一种治疗平台,可用于了解钙蛋白酶活性的区域和细胞特异性治疗抑制,以帮助为 TBI 设计药物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3932/11411711/def43727a05c/nn4c06052_0001.jpg

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