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Stimuli-Responsive Photoacoustic Nanoswitch for in Vivo Sensing Applications

机译:体内传感应用中的刺激响应光声纳米开关

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摘要

Photoacoustic imaging provides high-resolution images at depths beyond the optical diffusion limit. To broaden its utility, there is need for molecular sensors capable of detecting environmental stimuli through alterations in photoacoustic signal. Photosynthetic organisms have evolved ingenious strategies to optimize light absorption through nanoscale ordered dye aggregation. Here, we use this concept to synthesize a stimuli-responsive nanoswitch with a large optical absorbance and sensing capabilities. Ordered dye aggregation between light-harvesting porphyrins was achieved through intercalation within thermoresponsive nanovesicles. This causes an absorbance red-shift of 74 nm and a 2.7-fold increase in absorptivity of the Qy-band, with concomitant changes in its photoacoustic spectrum. This spectral feature can be reversibly switched by exceeding a temperature threshold. Using this thermochromic property, we noninvasively determined a localized temperature change in vivo, relevant for monitoring thermal therapies of solid tumors. Similar strategies may be applied alongside photoacoustic imaging, to detect other stimuli such as pH and enzymatic activity.
机译:光声成像在超出光扩散极限的深度提供高分辨率图像。为了扩大其用途,需要能够通过光声信号的改变来检测环境刺激的分子传感器。光合生物已经进化出巧妙的策略,可以通过纳米级有序染料聚集来优化光吸收。在这里,我们使用此概念来合成具有大的光吸收和传感功能的刺激响应纳米开关。聚光卟啉之间的有序染料聚集是通过插在热响应性纳米囊泡中实现的。这会引起74 nm的吸光度红移和Qy波段的吸收率增加2.7倍,其光声光谱也随之变化。通过超过温度阈值,可以可逆地切换此光谱特征。利用这种热致变色特性,我们无创地确定了体内的局部温度变化,这与监测实体瘤的热疗法有关。可以将类似的策略与光声成像一起应用,以检测其他刺激,例如pH值和酶活性。

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