Akash Kumar Singh, Amrish Rai, Ila Joshi, Damodara N Reddy, Rajdeep Guha, Kumari Alka, Shubha Shukla, Srikanta Kumar Rath, Aamir Nazir, James P Clement, Tapas K Kundu
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Using a combination of molecular biology, microscopy, and electrophysiological techniques, we systematically investigate the comparative efficacy of oral administration of CSP and CSP-TTK21 in wild-type mice and evaluate their functional effects in comparison to intraperitoneal (IP) administration. Our findings indicate that CSP-TTK21, when administered orally, induces long-term potentiation in the hippocampus without significantly altering basal synaptic transmission, a response comparable to that achieved through IP injection. Remarkably, in a spinal cord injury model, oral administration of CSP-TTK21 exhibits efficacy equivalent to that of IP administration. Furthermore, our research demonstrates that oral delivery of CSP-TTK21 leads to improvements in motor function, histone acetylation dynamics, and increased expression of regeneration-associated genes (RAGs) in a spinal injury rat model, mirroring the effectiveness of IP administration. Importantly, no toxic and mutagenic effects of CSP-TTK21 are observed at a maximum tolerated dose of 1 g/kg in Sprague-Dawley (SD) rats <i>via</i> the oral route. 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引用次数: 0
摘要
TTK21是p300/creb结合蛋白(CBP)乙酰转移酶活性的小分子激活剂,与葡萄糖衍生的碳纳米球(CSP)结合后,可有效穿过血脑屏障,激活大脑中的组蛋白乙酰化。它在成人神经发生和腹腔给药后保留长期空间记忆中的作用已得到公认。在这项研究中,我们成功地证明了 CSP-TTK21 可以通过口服给药有效地发挥作用。我们结合分子生物学、显微镜和电生理学技术,系统地研究了野生型小鼠口服 CSP 和 CSP-TTK21 的疗效比较,并评估了它们与腹腔给药相比的功能效应。我们的研究结果表明,口服 CSP-TTK21 可诱导海马的长期电位,而不会显著改变基础突触传递,这种反应与 IP 注射的效果相当。值得注意的是,在脊髓损伤模型中,口服 CSP-TTK21 的疗效与 IP 给药相当。此外,我们的研究还表明,在脊髓损伤大鼠模型中,口服 CSP-TTK21 可改善运动功能、组蛋白乙酰化动态以及再生相关基因(RAGs)表达的增加,这与 IP 给药的效果一致。重要的是,在斯普拉格-道利(SD)大鼠口服最大耐受剂量为 1 克/千克时,CSP-TTK21 未观察到毒性和致突变效应。总之,这些结果突出表明了 CSP 作为口服给药系统的潜在用途,尤其是在针对神经系统的给药方面。
Oral Administration of a Specific p300/CBP Lysine Acetyltransferase Activator Induces Synaptic Plasticity and Repairs Spinal Cord Injury.
TTK21 is a small-molecule activator of p300/creb binding protein (CBP) acetyltransferase activity, which, upon conjugation with a glucose-derived carbon nanosphere (CSP), can efficiently cross the blood-brain barrier and activate histone acetylation in the brain. Its role in adult neurogenesis and retention of long-term spatial memory following intraperitoneal (IP) administration is well established. In this study, we successfully demonstrate that CSP-TTK21 can be effectively administered via oral gavage. Using a combination of molecular biology, microscopy, and electrophysiological techniques, we systematically investigate the comparative efficacy of oral administration of CSP and CSP-TTK21 in wild-type mice and evaluate their functional effects in comparison to intraperitoneal (IP) administration. Our findings indicate that CSP-TTK21, when administered orally, induces long-term potentiation in the hippocampus without significantly altering basal synaptic transmission, a response comparable to that achieved through IP injection. Remarkably, in a spinal cord injury model, oral administration of CSP-TTK21 exhibits efficacy equivalent to that of IP administration. Furthermore, our research demonstrates that oral delivery of CSP-TTK21 leads to improvements in motor function, histone acetylation dynamics, and increased expression of regeneration-associated genes (RAGs) in a spinal injury rat model, mirroring the effectiveness of IP administration. Importantly, no toxic and mutagenic effects of CSP-TTK21 are observed at a maximum tolerated dose of 1 g/kg in Sprague-Dawley (SD) rats via the oral route. Collectively, these results underscore the potential utility of CSP as an oral drug delivery system, particularly for targeting the neural system.
期刊介绍:
ACS Chemical Neuroscience publishes high-quality research articles and reviews that showcase chemical, quantitative biological, biophysical and bioengineering approaches to the understanding of the nervous system and to the development of new treatments for neurological disorders. Research in the journal focuses on aspects of chemical neurobiology and bio-neurochemistry such as the following:
Neurotransmitters and receptors
Neuropharmaceuticals and therapeutics
Neural development—Plasticity, and degeneration
Chemical, physical, and computational methods in neuroscience
Neuronal diseases—basis, detection, and treatment
Mechanism of aging, learning, memory and behavior
Pain and sensory processing
Neurotoxins
Neuroscience-inspired bioengineering
Development of methods in chemical neurobiology
Neuroimaging agents and technologies
Animal models for central nervous system diseases
Behavioral research