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Enhanced Sensitivity Carbon Nanotubes as Targeted Photoacoustic Molecular Imaging Agents

机译:增强灵敏度的碳纳米管作为靶向光声分子成像剂

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Photoacoustic imaging of living subjects offers high spatial resolution at increased tissue depths compared to purely optical imaging techniques. We have recently shown that intravenously injected single walled carbon nanotubes (SWNTs) can be used as targeted photoacoustic imaging agents in living mice using RGD peptides to target α_vβ_3 integrins. We have now developed a new targeted photoacoustic imaging agent based on SWNTs and Indocyanine Green (SWNT-ICG) with absorption peak at 780nm. The photoacoustic signal of the new imaging agent is enhanced by ~20 times as compared to plain SWNTs. The particles are synthesized from SWNT-RGD that non-covalently attach to multiple ICG molecules through pi-pi stacking interactions. Negative control particles had RAD peptide instead of RGD. We measured the serum stability of the particles and verified that the RGD/RAD conjugation did not alter the particle's absorbance spectrum. Finally, through cell uptake studies with U87MG cells we verified that the particles bind selectively to α_vβ_3 integrin. In conclusion, the extremely high absorption of the SWNT-ICG particles shows great promise for high sensitivity photoacoustic imaging of molecular targets in-vivo. This work lays the foundations for future in-vivo studies that will use the SWNT-ICG particles as imaging agents administered systemically.
机译:与纯光学成像技术相比,活体对象的光声成像可在增加的组织深度上提供高空间分辨率。我们最近显示,静脉注射的单壁碳纳米管(SWNT)可以用作活体小鼠的靶向光声成像剂,使用RGD肽靶向α_vβ_3整联蛋白。我们现已开发出一种新的靶向光声成像剂,它基于SWNT和Indocyanine Green(SWNT-ICG),其吸收峰在780nm处。与普通SWNT相比,新型显像剂的光声信号增强了约20倍。颗粒是通过SWNT-RGD合成的,该SWNT-RGD通过pi-pi堆积相互作用非共价附于多个ICG分子。阴性对照颗粒具有RAD肽而不是RGD。我们测量了颗粒的血清稳定性,并验证了RGD / RAD共轭不会改变颗粒的吸收光谱。最后,通过对U87MG细胞的细胞摄取研究,我们证实了该颗粒与α_vβ_3整联蛋白选择性结合。总之,SWNT-ICG颗粒的极高吸收显示出对体内分子靶标进行高灵敏度光声成像的巨大希望。这项工作为将来的体内研究奠定了基础,该研究将使用SWNT-ICG颗粒作为全身给药的显像剂。

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