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Biology subjects

Kovacs, H.

Publications and source records attributed to Kovacs, H..

2 recordsLinked to original sources

A genome-wide CRISPR screen reveals cancer-specific regulators of hyaluronan binding and cellular invasion

Metastatic spread of cancer cells is driven by binding between the cell-surface receptor CD44 and hyaluronan (HA) in the extracellular matrix. The specific oncogenes that drive increased CD44-HA binding in cancer remain poorly defined. Using a fluorescently labeled hyaluronan probe, we performed a genome-wide CRISPR screen to identify genes whose knockdown disrupts HA binding in breast cancer cells. We subsequently developed a bioinformatic analysis pipeline that enabled stratification and prioritization of cancer-specific regulators. This work provides a first-in-class resource for the identification of druggable targets to inhibit HA binding. We further validate RAB4A, a top hit from our screen, as a novel regulator of this process. Mechanistically, RAB4A KO dramatically reduces CD44 expression and inhibits the invasion of breast cancer cells through HA-rich matrices. This study validates a novel strategy for identifying regulators of cancer cell invasion and identifies immediate actionable targets for anti-metastatic therapy.

cancer biology↗

A lectin-based magnetic CRISPR screening protocol permits rapid discovery of genes regulating cell-surface glycosylation

FACS-based CRISPR screening has emerged as a potent tool for dissecting the genetic networks that regulate cell-surface glycosylation. However, existing protocols are tedious and poorly suited to many cell models. We developed a lectin-based magnetic-activated cell sorting platform (Lec-MACS) that enables rapid identification of genes controlling expression of specific cell-surface glycans. Lec-MACS is faster and easier to perform than FACS-based screening while producing data of similar quality. We subsequently applied Lec-MACS to produce a genomic atlas of genes regulating breast cancer hypersialylation. This method will dramatically expand the scope and throughput of genetic screens targeted at cell-surface glycans.

genomics↗