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Split-TurboID enables contact-dependent proximity labeling in cells Yet some cellular regions, such as organelle contact sites, remain out of reach for current PL methods To address this limitation, we split the enzyme TurboID into two inactive fragments that recombine when driven together by a protein-protein interaction or membrane-membrane apposition
Split-TurboID enables contact-dependent proximity labeling in cells . . . Yet some cellular regions, such as organelle contact sites, remain out of reach for current PL methods To address this limitation, we split the enzyme TurboID into two inactive fragments that recombine when driven together by a protein-protein interaction or membrane-membrane apposition
Split-TurboID enables contact-dependent proximity labeling in cells . . . Yet some cellular regions, such as organelle contact sites, remain out of reach for current PL methods To address this limitation, we split the enzyme TurboID into two inactive fragments that recombine when driven together by a protein-protein interaction or membrane-membrane apposition