...
首页> 外文期刊>Journal of neuroinflammation >Selective targeting of microglia by quantum dots
【24h】

Selective targeting of microglia by quantum dots

机译:量子点对小胶质细胞的选择性靶向

获取原文

摘要

Background Microglia, the resident immune cells of the brain, have been implicated in brain injury and various neurological disorders. However, their precise roles in different pathophysiological situations remain enigmatic and may range from detrimental to protective. Targeting the delivery of biologically active compounds to microglia could help elucidate these roles and facilitate the therapeutic modulation of microglial functions in neurological diseases. Methods Here we employ primary cell cultures and stereotaxic injections into mouse brain to investigate the cell type specific localization of semiconductor quantum dots (QDs) in vitro and in vivo. Two potential receptors for QDs are identified using pharmacological inhibitors and neutralizing antibodies. Results In mixed primary cortical cultures, QDs were selectively taken up by microglia; this uptake was decreased by inhibitors of clathrin-dependent endocytosis, implicating the endosomal pathway as the major route of entry for QDs into microglia. Furthermore, inhibiting mannose receptors and macrophage scavenger receptors blocked the uptake of QDs by microglia, indicating that QD uptake occurs through microglia-specific receptor endocytosis. When injected into the brain, QDs were taken up primarily by microglia and with high efficiency. In primary cortical cultures, QDs conjugated to the toxin saporin depleted microglia in mixed primary cortical cultures, protecting neurons in these cultures against amyloid beta-induced neurotoxicity. Conclusions These findings demonstrate that QDs can be used to specifically label and modulate microglia in primary cortical cultures and in brain and may allow for the selective delivery of therapeutic agents to these cells.
机译:背景小胶质细胞是大脑的固有免疫细胞,与脑损伤和各种神经系统疾病有关。但是,它们在不同病理生理情况下的确切作用仍然是令人困惑的,可能从有害到保护性不等。靶向将生物活性化合物递送至小胶质细胞可有助于阐明这些作用,并促进神经系统疾病中小胶质细胞功能的治疗性调节。方法在这里,我们采用原代细胞培养和小鼠脑立体定向注射技术,以研究在体外和体内半导体量子点(QD)的细胞类型特异性定位。使用药理抑制剂和中和抗体可鉴定QD的两种潜在受体。结果在混合的原代皮层培养物中,小胶质细胞选择性地吸收了QD。网格蛋白依赖的内吞作用抑制剂可减少这种摄取,这暗示内体途径是QD进入小胶质细胞的主要途径。此外,抑制甘露糖受体和巨噬细胞清道夫受体阻止了小胶质细胞对QDs的吸收,这表明QD的吸收是通过小胶质细胞特异性受体的内吞作用发生的。当注入大脑时,量子点主要被小胶质细胞吸收并且效率很高。在原代皮层培养物中,在混合的原代皮层培养物中,QDs与毒素saporin耗尽的小胶质细胞结合,从而保护了这些培养物中的神经元免受淀粉样β诱导的神经毒性。结论这些发现表明,量子点可用于特异性标记和调节原代皮层培养物中和大脑中的小胶质细胞,并可允许将治疗剂选择性地递送至这些细胞。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号