Light‐Guided Genetic Scissors Based on Phosphorene Quantum Dot

Author:

Chen Zhi12ORCID,Huang Hao1,Deng Jiefeng13,Meng Changle1,Zhang Yule1,Fan Taojian1,Wang Lude14,Sun Shuo1,Liu Yi1,Lin Huiling5,Li Shuang3,Bai Yunpeng6,Gao Lingfeng7,Qu Junle1,Fan Dianyuan18,Zhang Xueji19,Zhang Han1ORCID

Affiliation:

1. State Key Laboratory of Radio Frequency Heterogeneous Integration, Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Physics and Optoelectronics Engineering Shenzhen University Shenzhen 518060 China

2. Shenzhen International Institute for Biomedical Research Shenzhen 518110 China

3. College of Pharmacy Dali University Dali 671000 China

4. School of Artificial Intelligence and Information Technology Nanjing University of Chinese Medicine No. 138 Xianling Rd. Nanjing 210023 China

5. Hengyang Medical College University of South China Hengyang Hunan 421001 China

6. Department of Endodontics, Shenzhen Stomatology Hospital Shenzhen University Shenzhen 518110 China

7. College of Material Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology, Ministry of Education Hangzhou Normal University Hangzhou 311121 China

8. International Collaborative Laboratory of 2D Materials for Optoelectronic Science and Technology of Ministry of Education Shenzhen University Shenzhen 518060 China

9. School of Biomedical Engineering, Medical School Shenzhen University Shenzhen 518060 China

Abstract

AbstractGenetic engineering faces persistent challenges in achieving precise Deoxyribonucleic acid (DNA) cleavage, especially with the limitations associated with current enzyme‐based methods, exemplified by issues in CRISPR technologies. This study introduces a groundbreaking approach: utilizing reactive oxygen species (ROS) generated by Multiphoton Absorption (MPA)‐excited Black Phosphorus Quantum Dots (BPQDs) under femto‐second laser irradiation. This innovative method not only allows excitation with lower energy but also enhances overall efficiency. The integration of complementary RNA sequences facilitates high‐efficiency, site‐selective DNA cleavage in the system, named “TADPOLE” (Targeted DNA Precision Oriented Laser Excision). Beyond its precision in targeting arbitrary DNA sequences using quantum dots, TADPOLE harnesses the unique multiphoton absorption property of BPQDs, enabling excitation with lower‐energy light sources suitable for in vivo applications in the future. Moreover, the approach integrates guiding RNA and ultrafast laser technology to provide precise control over local ROS generation and minimal heat production. This guarantees site‐specific DNA cleavage while mitigating the risk of damage to non‐targeted sequences. In summary, this study catalyzes advancements in enzyme‐free DNA cleavage technologies, with transformative implications for genetic engineering, biotechnology, and medicine. The holistic precision, versatility, and endurance presented by TADPOLE open new avenues for targeted gene therapies and transformative applications in related fields.

Funder

National Natural Science Foundation of China

Department of Education of Guangdong Province

State Key Laboratory of Luminescence and Applications

Publisher

Wiley

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