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Biology subjects

Cheung, T. K.

Publications and source records attributed to Cheung, T. K..

3 recordsLinked to original sources

Architecture and Function of Holocentric CENP-A-Independent Kinetochores

Kinetochores are essential macromolecular complexes that anchor chromosomes to the mitotic spindle to ensure faithful cell division1. Despite their critical role, the structural organization of kinetochores assembled on centromeres with vastly distinct architectures across diverse species remains poorly understood2,3. To address this question, we determined the cryo-EM structures of the inner kinetochore (CCAN) from the silkmoth Bombyx mori, an insect that lacks the canonical centromere-specifying histone variant CENP-A and exhibits chromosome-wide centromeric activity (holocentric). Our analysis reveals that B. mori CCAN assembles via atypical histone-fold protein dimerization into a self-contained, head-to-head dimer that topologically entraps and loops DNA, creating a point-centromere-like architecture. This structure also incorporates four previously uncharacterized Centromeric Subunit proteins that are evolutionarily repurposed from the outer kinetochore Dam1/DASH complex. Our work establishes this self-contained CCAN dimer as a key structural unit that forms the basis of a holocentric organization and suggests that large-scale centromere architectures can emerge from the modular arrangement of such discrete kinetochore units.

cell biology↗

Cell-Type-Specific Surfaceome Profiling of 100-500 Isolated Cells using a Droplet-Based Magnetic Affinity Purification System

Cell surface proteins (CSPs) represent an important source of biomarkers and therapeutic targets. However, due to the inherent sensitivity limitations of existing technologies, tissue and cell-type-specific surfaceomes remain poorly characterized, especially in the context of human diseases. Herein, we develop nanoMAPS (nanoscale Magnetic Affinity Purification System), a miniaturized proteomic sample preparation method for surfaceome profiling of as few as 100-500 cells (1000x to 100,000x lower than existing technologies). We demonstrate that the miniaturization of magnetic bead-based affinity purification inside a single droplet can efficiently improve the recovery of surface proteins and reduce non-specific absorption of intracellular proteins. By applying nanoMAPS to human immune cells isolated from PBMCs, we demonstrate robust identification of both well-known cell-type-specific surface markers and candidate proteins. We establish nanoMAPS as a promising platform to expand surface proteomics from cultured cells to primary cells isolated from patients or mouse models.

systems biology↗

Rational design of potent small molecule SMARCA2/A4 (BRM/BRG1) degraders acting via the recruitment of FBXO22

Target-anchored monovalent degraders are more drug-like than their bivalent counterparts, Proteolysis Targeting Chimeras (PROTACs), while offering greater target specificity control than the E3 ligase-anchored monovalent degraders, also known as molecular glues. However, their discovery has typically been serendipitous, and the rules governing their identification remain unclear. This study focused on the intentional discovery of SMARCA2/A4 monovalent degraders using a library based on SMARCA2/A4 bromodomain-binding ligands. Compound G-6599 emerged as a lead candidate, showing exceptional degradation potency and specificity for SMARCA2/A4. Mechanistic studies revealed that G-6599 operates through the ubiquitin-proteasome pathway and the E3 ligase FBXO22. G-6599 was shown to promote ternary complex formation between SMARCA2 and FBXO22 involving covalent conjugation to a cysteine residue on the latter. Unlike other recently identified FBXO22-dependent degraders, it does not require biotransformation. The selective degradation ability of G-6599, along with its unique mechanism, highlights the therapeutic potential of target-anchored monovalent degraders.

cancer biology↗