Jingge Yang, Yujia Qiu, Keesiang Lim, Toshio Ando, Richard W Wong
DNA degradation by nucleases is central to genome maintenance, immune defense, and the clearance of extracellular DNA, yet its execution at the single-molecule level remains poorly defined. Here, we use high-speed atomic force microscopy (HS-AFM) to directly visualize the real-time dynamics of DNA digestion by DNase I at nanometer resolution. DNase I repeatedly revisits structurally strained DNA regions before cleavage initiation, revealing a topology-sensitive mode of interaction that is inaccessible to ensemble biochemical approaches. Time-resolved imaging further uncovers a multistep degradation trajectory involving DNA scanning, localized engagement, strand rupture, and progressive filament disassembly, which we term STORM (Scan, Target, Occupy, Rupture, Mobilize) framework. In parallel, we show that protamine-induced DNA condensation into rod- and toroid-like architectures markedly suppresses enzymatic accessibility and stabilizes DNA against nuclease attack. Together, these findings establish a nanoscale structural and kinetic framework for how DNA is either degraded or protected under enzymatic stress, with implications for chromatin biology, innate immunity, autoimmune disease, and the design of nuclease-resistant gene delivery systems.