bioRxiv Science⌕ Search

Biology subjects

Voet, A. R.

Publications and source records attributed to Voet, A. R..

3 recordsLinked to original sources

Intracellular BAPTA directly inhibits PFKFB3, thereby impeding mTORC1-driven Mcl-1 translation and killing Mcl-1-addicted cancer cells

Intracellular Ca2+ signals control several physiological and pathophysiological processes. The main tool to chelate intracellular Ca2+ is intracellular BAPTA (BAPTAi), usually introduced into cells as a membrane-permeant acetoxymethyl ester (BAPTA-AM). We previously demonstrated that BAPTAi enhanced apoptosis induced by venetoclax, a Bcl-2 antagonist, in diffuse large B-cell lymphoma (DLBCL). These findings implied a novel interplay between intracellular Ca2+ signaling and anti-apoptotic Bcl-2 function. Hence, we set out to identify the underlying mechanisms by which BAPTAi enhances cell death in B-cell cancers. In this study, we observed that BAPTAi alone induced apoptosis in lymphoma cell models that were highly sensitive to S63845, an Mcl-1 antagonist. BAPTAi provoked a rapid decline in Mcl-1 protein levels by inhibiting mTORC1-driven MCL-1 translation. Overexpression of nondegradable Mcl-1 rescued BAPTAi-induced cell death. We further examined how BAPTAi diminished mTORC1 activity and found that BAPTAi impaired glycolysis by directly inhibiting 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase 3 (PFKFB3) activity, an up to now unkown effect of BAPTAi. All aforementioned effects of BAPTAi were also elicited by a BAPTAi analog with low affinity for Ca2+. Thus, our work reveals PFKFB3 inhibition as an unappreciated Ca2+-independent mechanism by which BAPTAi impairs cellular metabolism and ultimately the survival of Mcl-1-dependent cancer cells. Our work has two important implications. First, direct inhibition of PFKFB3 emerged as a key regulator of mTORC1 activity and a promising target in the treatment of Mcl-1-dependent cancers. Second, cellular effects caused by BAPTAi are not necessarily related to Ca2+ signaling. Our data support the need for a reassessment of the role of Ca2+ in cellular processes when findings were based on the use of BAPTAi.

cell biology↗

A widely applicable and cost-effective method for general and specific RNA-protein complex isolation

Despite important methodological advances made in the past few years, a widely applicable, cost-effective and easily scalable procedure that can be routinely used to isolate ribonucleoprotein complexes (RNPs) remains elusive. We describe a versatile method that connects aspects of existing methods in a workflow optimized to reach the above goals and called it "Silica-based Acidic Phase Separation (SAPS)-capture". To validate the method, the 18S rRNP of S. cerevisiae was captured. To illustrate its applicability, we isolated a repertoire of RNPs in A. thaliana. This procedure can provide the community with a powerful tool to advance the study of ribonomes and RNPs in any organism or tissue type.

molecular biology↗

Structure and Stability of the designer protein WRAP-T and its permutants

{beta}-Propeller proteins are common natural disc-like pseudo-symmetric proteins that contain multiple repeats ( blades) each consisting of a 4-stranded anti-parallel {beta}-sheet. So far, 4- to 12-bladed {beta}-propellers have been discovered in nature showing large functional and sequential variation. Using computational design approaches, we created perfectly symmetric {beta}-propellers out of natural pseudo-symmetric templates. These proteins are useful tools to study protein evolution of this very diverse fold. While the 7-bladed architecture is the most common, no symmetric 7-bladed monomer has been created and characterized so far. Here we describe such a engineered protein, based on a highly symmetric natural template, and test the effects of circular permutation on its stability. Geometrical analysis of this protein and other artificial symmetrical proteins reveals no systematic constraint that could be used to help in engineering of this fold, and suggests sequence constraints unique to each {beta}-propeller sub-family.

biophysics↗