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Biology subjects

Kozlov, S.

Publications and source records attributed to Kozlov, S..

3 recordsLinked to original sources

Computational design of soluble analogues of integral membrane protein structures

De novo design of complex protein folds using solely computational means remains a significant challenge. Here, we use a robust deep learning pipeline to design complex folds and soluble analogues of integral membrane proteins. Unique membrane topologies, such as those from GPCRs, are not found in the soluble proteome and we demonstrate that their structural features can be recapitulated in solution. Biophysical analyses reveal high thermal stability of the designs and experimental structures show remarkable design accuracy. The soluble analogues were functionalized with native structural motifs, standing as a proof-of-concept for bringing membrane protein functions to the soluble proteome, potentially enabling new approaches in drug discovery. In summary, we designed complex protein topologies and enriched them with functionalities from membrane proteins, with high experimental success rates, leading to a de facto expansion of the functional soluble fold space.

bioinformatics↗

CK2 signaling from TOLLIP-dependent perinuclear endosomes is an essential feature of KRAS mutant cancers

Oncogenic RAS induces perinuclear translocation of the effector kinases ERK and CK2 and their scaffold, KSR1, forming endosomal signaling hubs termed perinuclear signaling centers (PSCs). PSCs are present in all cancer cell lines and tissues examined, suggesting that subcellular compartmentalization of oncogenic kinases drives tumorigenesis. However, the mechanism of perinuclear targeting, whether this location affects kinase substrate specificity, and the importance of PSCs in cancer are unclear. Here we show that the endosomal adaptor, TOLLIP, specifically tethers RAB11A+ signaling endosomes containing CK2 and KSR1 to the perinuclear ER. A predicted {beta}-hairpin fold in TOLLIP mediates binding to the KSR1 CA5 pseudo-kinase domain, recruiting CK2/KSR1 complexes to perinuclear endosomes. TOLLIP is essential for proliferation/survival of tumor cells carrying KRAS and NRAS mutations but not HRAS, BRAF, ERBB or PTEN lesions, or non-transformed cells. KRasG12D-induced lung lesions in Tollip-/- mice displayed reduced numbers of carcinomatous lesions, implicating TOLLIP in malignant progression. TOLLIP-dependent perinuclear CK2 was shown to phosphorylate discrete substrates, including proteins involved in translation and ribosome biogenesis such as RIOK1. Thus, TOLLIP is a key RAS pathway signaling adaptor in K/NRAS tumors whose inhibition is a specific vulnerability of these cancers.

cancer biology↗

Perception of RNA Nanotechnology among students and recommendations towards improved educational outreach

Translating new technologies to industrial and biomedical applications requires a highly skilled workforce. In the past, colleges and graduate schools played a primary role in preparing students for various areas of industry and medicine. The learning process and introduction of new concepts have recently extended beyond college education. High schools saw the rise of specialized career programs, while both high and middle school curricula got infused with challenging concepts. Nucleic acids, such as DNA and RNA, are broadly known for their role in the foundation of life. However, nucleic acid nanotechnology, an area of material science manipulating DNA and RNA to create complex structures with controlled properties, is less known. Herein, I report the results of a study investigating the perception of RNA nanotechnology among school students and suggest educational resources to improve understanding of RNA nanotechnology.

scientific communication and education↗