Literature DB >> 34597036

Polydopamine-Decorated Microcomposites Promote Functional Recovery of an Injured Spinal Cord by Inhibiting Neuroinflammation.

Guangfei Wei1,2, Dongdong Jiang3, Shuai Hu1,2, Zhiyuan Yang1,2, Zifan Zhang1,2, Wei Li4, Weihua Cai3, Dongfei Liu1,2.   

Abstract

Neuroinflammation following spinal cord injury usually aggravates spinal cord damage. Many inflammatory cytokines are key players in neuroinflammation. Owing largely to the multiplicity of cytokine targets and the complexity of cytokine interactions, it is insufficient to suppress spinal cord damage progression by regulating only one or a few cytokines. Herein, we propose a two-pronged strategy to simultaneously capture the released cytokines and inhibit the synthesis of new ones in a broad-spectrum manner. To achieve this strategy, we designed a core/shell-structured microcomposite, which was composed of a methylprednisolone-incorporated polymer inner core and a biocompatible polydopamine outer shell. Thanks to the inherent adhesive nature of polydopamine, the obtained microcomposite (MP-PLGA@PDA) efficiently neutralized the excessive cytokines in a broad-spectrum manner within 1 day after spinal cord injury. Meanwhile, the controlled release of immunosuppressive methylprednisolone reduced the secretion of new inflammatory cytokines. Benefiting from its efficient and broad-spectrum capability in reducing the level of cytokines, this core/shell-structured microcomposite suppressed the recruitment of macrophages and protected the injured spinal cord, leading to an improved recovery of motor function. Overall, the designed microcomposite successfully achieved the two-pronged strategy in cytokine neutralization, providing an alternative approach to inhibit neuroinflammation in the injured spinal cord.

Entities:  

Keywords:  inflammatory cytokines; microcomposites; polydopamine; resolution of inflammation; spinal cord injury

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Year:  2021        PMID: 34597036     DOI: 10.1021/acsami.1c11772

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  1 in total

1.  Mussel-inspired collagen-hyaluronic acid composite scaffold with excellent antioxidant properties and sustained release of a growth factor for enhancing diabetic wound healing.

Authors:  Yong Wang; Li Chen; Dan-Yang Ren; Zi-Xuan Feng; Li-Yun Zhang; Yu-Fan Zhong; Ming-Yuan Jin; Fa-Wei Xu; Chun-Yan Feng; Yong-Zhong Du; Wei-Qiang Tan
Journal:  Mater Today Bio       Date:  2022-06-10
  1 in total

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