College of Mechatronics and Automation, Huaqiao University, Xiamen, China.
College of Mechanical Information Science and Engineering, Huaqiao University, Xiamen, China.
PLoS One. 2024 Aug 26;19(8):e0308662. doi: 10.1371/journal.pone.0308662. eCollection 2024.
Laser microdissection technology is favored by biomedical researchers for its ability to rapidly and accurately isolate target cells and tissues. However, the precision cutting capabilities of existing laser microdissection systems are hindered by limitations in overall mechanical movement accuracy, resulting in suboptimal cutting quality. Additionally, the use of current laser microdissection systems for target acquisition may lead to tissue burns and reduced acquisition rates due to inherent flaws in the capture methods. To address these challenges and achieve precise and efficient separation and capture of cellular tissues, we integrated a digital micromirror device (DMD) into the existing system optics to modulate spatial light. This allows the system to not only implement the traditional point scanning cutting method but also utilize the projection cutting method.We have successfully cut various patterns on commonly used laser microdissection materials such as PET films and mouse tissues. Under projection cutting mode, we were able to achieve precise cutting of special shapes with a diameter of 7.5 micrometers in a single pass, which improved cutting precision and efficiency. Furthermore, we employed a negative pressure adsorption method to efficiently collect target substances. This approach not only resulted in a single-pass capture rate exceeding 90% for targets of different sizes but also enabled simultaneous capture of multiple targets, overcoming the limitations of traditional single-target capture and enhancing target capture efficiency, and avoiding potential tissue damage from lasers.In summary, the integration of the digital micromirror device into laser microdissection systems significantly enhances cutting precision and efficiency, overcoming limitations of traditional systems. This advancement demonstrates the accuracy and effectiveness of laser microdissection systems in isolating and capturing biological tissues, highlighting their potential in medical applications.
激光显微切割技术因其能够快速、准确地分离目标细胞和组织而受到生物医学研究人员的青睐。然而,现有的激光显微切割系统的精确切割能力受到整体机械运动精度的限制,导致切割质量不佳。此外,由于捕获方法的固有缺陷,当前的激光显微切割系统用于目标获取可能导致组织灼伤和获取率降低。为了解决这些挑战,并实现对细胞组织的精确和高效分离和捕获,我们将数字微镜器件 (DMD) 集成到现有的系统光学器件中,以调制空间光。这不仅使系统能够实现传统的点扫描切割方法,还能够利用投影切割方法。我们已经成功地在常用的激光显微切割材料(如 PET 膜和小鼠组织)上切割了各种图案。在投影切割模式下,我们能够在单次通过中精确切割直径为 7.5 微米的特殊形状,从而提高了切割精度和效率。此外,我们采用负压吸附法来有效地收集目标物质。这种方法不仅实现了不同大小目标的单次捕获率超过 90%,还能够同时捕获多个目标,克服了传统的单个目标捕获的限制,提高了目标捕获效率,避免了激光对组织的潜在损伤。总之,将数字微镜器件集成到激光显微切割系统中显著提高了切割精度和效率,克服了传统系统的限制。这一进展展示了激光显微切割系统在分离和捕获生物组织方面的准确性和有效性,突出了其在医学应用中的潜力。