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将肽精确且微创地递送至脊髓以调节行为

Spatially Precise and Minimally Invasive Delivery of Peptides to the Spinal Cord for Behavior Modulation.

作者信息

Leong Tiffany W, Gao Zhenghong, David Eric T, Li Xiaoqing, Cai Qi, Mwirigi Juliet M, Zhang Tingting, Giannotta Monica, Dejana Elisabetta, Wiggins John, Krishnagiri Sharada, Bachoo Robert M, Ge Xiaoqian, Price Theodore J, Qin Zhenpeng

机构信息

Department of Bioengineering, University of Texas at Dallas, Richardson, Texas 75080, United States.

Department of Mechanical Engineering, University of Texas at Dallas, Richardson, Texas 75080, United States.

出版信息

ACS Nano. 2024 Dec 24;18(51):34720-34729. doi: 10.1021/acsnano.4c06030. Epub 2024 Dec 10.

Abstract

The blood-spinal cord barrier (BSCB) tightly regulates the transport of molecules from the blood to the spinal cord. Herein, we present an approach for transient modulation of BSCB permeability and localized delivery of peptides into the spinal cord for behavior modulation with high spatial resolution. This approach utilizes optical stimulation of vasculature-targeted nanoparticles and allows delivery of BSCB-impermeable molecules into the spinal cord without significant glial activation or impact on animal locomotor behavior. We demonstrate minimally invasive light delivery into the spinal cord using an optical fiber and BSCB permeability modulation in the lumbar region. Our method of BSCB modulation allows the delivery of bombesin, a centrally acting and itch-inducing peptide, into the spinal cord and induces a rapid and transient increase in itching behaviors in mice. This minimally invasive approach enables behavior modulation without genetic modifications and is promising for delivering a wide range of biologics into the spinal cord for potential therapy with high spatiotemporal resolution.

摘要

血脊髓屏障(BSCB)严格调控分子从血液到脊髓的运输。在此,我们提出一种方法,可对BSCB通透性进行瞬时调节,并将肽局部递送至脊髓以调节行为,且具有高空间分辨率。该方法利用对靶向脉管系统的纳米颗粒进行光刺激,能够将不能透过BSCB的分子递送至脊髓,而不会引起明显的胶质细胞激活或对动物运动行为产生影响。我们展示了使用光纤将光微创递送至脊髓以及在腰段调节BSCB通透性。我们的BSCB调节方法可将蛙皮素(一种具有中枢作用且能诱发瘙痒的肽)递送至脊髓,并在小鼠中诱导瘙痒行为迅速且短暂地增加。这种微创方法无需基因改造即可调节行为,有望以高时空分辨率将多种生物制剂递送至脊髓用于潜在治疗。

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