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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Characterization of Laser Gold Nanowarming: A Platform for Millimeter-Scale Cryopreservation
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Characterization of Laser Gold Nanowarming: A Platform for Millimeter-Scale Cryopreservation

机译:激光金纳米刀头的特征:毫米级冷冻保存平台

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Preventing ice formation during cryopreservation by vitrification has led to the successful storage and banking of numerous cellular- and tissue-based biomaterials. In their breakthrough work, Peter Mazur's group achieved over 90% survival by using a laser warming technique for 100 mu m mice oocytes that were cooled in 0.1 mu L droplets with 2.3 M CPA and extracellularly loaded India ink (laser absorber). Laser warming can provide rapid and uniform warming rates to "outrun" damaging ice crystal growth. Here we generalize Mazur's technique for microliter-sized droplets using laser nanowarming to rewarm millimeter-scale biomaterials when loaded extracellularly and/or intracellularly with biocompatible 1064 nm resonant gold nanoparticles. First, we show that droplets containing low-concentration cryoprotectants (such as 2 M propylene glycol +/- 1 M trehalose) can be rapidly cooled at rates up to 90 000 degrees C/min by plunging into liquid nitrogen to achieve either a visually transparent state (i.e., vitrified) or a cloudy with ice (i.e., nonvitrified) state. Both modeling and experiments were then used to characterize the laser nanowarming process for different laser energy (2-6 J), pulse length (1-20 ms), droplet volume (0.2-1.8 mu L), cryoprotectant (2-3 M), and gold concentration (0.77 x 10(17)-4.8 x 10(17) nps/m(3)) values to assess physical and biological success. Physical success was achieved by finding conditions that minimize cloudiness and white spots within the droplets during cooling and warming as signs of damaging ice formation and ice crystallization, respectively. Biological success was achieved using human dermal fibroblasts to find conditions that achieve >= 90% cell viability normalized to controls postwarming. Thus, physical and biological success can be achieved using this platform cryopreservation approach of rapid cooling and laser gold nanowarming in millimeter-scale systems.
机译:冷冻保存过程中阻止冰的形成玻璃化已导致众多蜂窝的和基于组织的生物材料的成功的存储和银行业。在他们的突破性工作中,Peter Mazur的组通过使用100 mu m小鼠卵母细胞的激光升温技术在0.1μl液滴中冷却的激光升温技术获得了超过90%的存活率,其中2.3米CPA和细胞外装载印度墨水(激光吸收器)。激光变暖可以为“超出”损坏冰晶生长提供快速和均匀的变暖速率。在这里,我们通过激光纳米制造在毫米和/或细胞内用生物相容性1064nm谐振金纳米颗粒加载时,通过激光纳米制造来概括Mazur的微升液滴技术。首先,我们表明,通过进入液氮将含有低浓度冷冻保护剂(例如2M丙二醇+/- 1m海藻糖)的液滴可以在液氮中快速冷却,以达到液氮,以达到视觉上透明的速度状态(即玻璃化)或冰(即非烫伤)状态的阴天。然后使用模拟和实验来表征不同激光能量(2-6 j),脉冲长度(1-20ms),液滴体积(0.2-1.8μl),冷冻保护剂(2-3米)的激光纳瓦型工艺和金浓度(0.77×10(17)-4.8×10(17)NPS / M(3))值评估物理和生物成功。通过发现在冷却和升温过程中减少液滴内的浑浊和白色点的条件,分别作为损坏冰形成和冰结晶的迹象来实现身体成功。使用人的皮肤成纤维细胞实现生物成功,以找到达到达到的细胞活力的条件,该病症被归一化以控制防治。因此,可以使用该平台冷冻保存方法在毫米级系统中快速冷却和激光金纳米制造方法实现物理和生物成功。

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