Nuclear Magnetic Coupled Fast Radio Burst Induced Upregulation of Hsp70 in Regeneration of Human Chondrocytes - A Sham Control Study

Pillai Vk, Shingati Muhammed Hashim, M. Nune, P. Gopal
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Abstract

Manipulating the cell’s inherent vulnerabilities to induce intrinsic changes and re-engineer diseased tissues to drive regeneration is a domain creating significant therapeutic impact through translational medicine. Articular cartilage injuries are recurrently experienced due to trauma, mechanical stress and age-related deterioration. Prevailing mend methods have failed to yield reliable or lasting results. Lack of suitable models that mimic the cellular and extra cellular matrix properties of hyaline cartilage has been one of the reasons for this deficiency. We investigated and observed, joint tissue obtained during total knee replacement surgeries from 7 discrete patients presenting with osteoarthritis and the commonly associated symptoms of inflammation and pain. We used modulated “Nuclear Magnetic Coupled Fast Radio Burst or simply Fast Radio Bursts”, a new modality that seems to trigger the cellular signaling required by the articular cartilage tissue, to mend and regenerate by upregulation of Heat Shock Protein 70. Fast Radio Bursts are high energy, short electromagnetic bursts, in which both electric and magnetic components of the electromagnetic signals are “circularly” polarized. Fast Radio Bursts are produced when a radio signal is traveling through a powerful instantaneous magnetic field on its path to the target. In this Sham controlled study, up-regulation of Hsp 70 protein, to establish its role in an in vitro model was designed to expose 2-Dimensional and 3-Dimensional cultures to Fast Radio Bursts, and compared to a Sham Control, under identical conditions but without exposing Sham Control culture to fast radio bursts. The 2D and 3D reconstructed cartilage tissues were then assessed in both groups. Experiments were conducted to characterize the 2D and 3D cultures to confirm total collagen, fibrillar collagen and proteoglycans, additionally; immunofluorescence and cell viability assay was performed to identify specific bio markers like Collagen 1, Collagen II, Aggrecan, Cell surface Adhesion factor, Hsp70 and cell viability. It could be established in this study that 2D cultures grown in newly defined media and exposed to Fast Radio Burst signals, when compared to 2D cultures grown as Sham culture showed more chondrocyte specific markers and viable matrix properties. In 3D cultures grown similarly also showed better deep layer properties compared to the 3D cultures grown in sham culture. Thus modulated Fast Radio Bursts exposure could play a significant role in specific protein up/down regulation in tissue regeneration.
核磁耦合快速射电爆发诱导Hsp70在人软骨细胞再生中的上调-一项假对照研究
操纵细胞固有的脆弱性来诱导内在的变化和重新设计病变组织来驱动再生是一个通过转化医学产生重大治疗影响的领域。关节软骨损伤是反复经历由于创伤,机械应力和年龄相关的恶化。流行的修补方法未能产生可靠或持久的结果。缺乏合适的模型来模拟透明软骨的细胞和细胞外基质特性是造成这种缺陷的原因之一。我们调查和观察了在全膝关节置换术中获得的关节组织,这些关节组织来自于7例表现为骨关节炎的离散患者,并伴有炎症和疼痛的常见相关症状。我们使用了调制的“核磁耦合快速无线电脉冲或简称快速无线电脉冲”,这是一种新的模式,似乎可以触发关节软骨组织所需的细胞信号,通过上调热休克蛋白70来修复和再生。快速射电暴是高能量、短时间的电磁暴,其中电磁信号的电和磁成分都是“圆”极化的。当无线电信号在到达目标的途中经过强大的瞬时磁场时,就会产生快速射电暴。在这项假对照研究中,上调Hsp 70蛋白,以确定其在体外模型中的作用,将二维和三维培养物暴露于快速射电暴中,并与假对照进行比较,在相同的条件下,不将假对照的培养物暴露于快速射电暴中。然后对两组的二维和三维重建软骨组织进行评估。通过实验对二维和三维培养物进行表征,确定总胶原蛋白、原纤维胶原蛋白和蛋白多糖;采用免疫荧光和细胞活力测定法鉴定特异性生物标志物,如Collagen 1、Collagen II、Aggrecan、cell surface Adhesion factor、Hsp70和细胞活力。在这项研究中可以确定,在新定义的培养基中培养的2D培养物暴露于快速无线电脉冲信号中,与作为假培养培养的2D培养物相比,显示出更多的软骨细胞特异性标记物和活基质特性。在3D培养中,与在假培养中培养的3D培养相比,同样生长的3D培养也显示出更好的深层特性。因此,调制的快速射电暴暴露可能在组织再生中特定蛋白质的上下调节中发挥重要作用。
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