Research, Research Articles

Extracellular DNA secreted in yeast cultures is metabolism-specific and inhibits cell proliferation

Extracellular DNA secreted in yeast cultures is metabolism-specific and inhibits cell proliferation

Elisabetta de Alteriis1, Guido Incerti2, Fabrizio Cartenì3, Maria Luisa Chiusano3, Chiara Colantuono3, Emanuela Palomba4, Pasquale Termolino4, Francesco Monticolo3,5, Alfonso Esposito3, Giuliano Bonanomi3,6, Rosanna Capparelli3, Marco Iannaccone3,7, Alessandro Foscari2, Carmine Landi8, Palma Parascandola8, Massimo Sanchez9, Valentina Tirelli9, Bruna de Falco3, Virginia Lanzotti3 and Stefano Mazzoleni3,6

Our study demonstrates that extracellular DNA released by living cells can impact the growth rate of Saccharomyces cerevisiae cultures, showing similarities to extrachromosomal circular DNA and leading to cell cycle arrest in the S phase, suggesting potential new functional roles of exDNA.

Basal level of ppGpp coordinates <i>Escherichia coli</i> cell heterogeneity and ampicillin resistance and persistence

Basal level of ppGpp coordinates Escherichia coli cell heterogeneity and ampicillin resistance and persistence

Paulina Katarzyna Grucela1 and Yong Everett Zhang1

The universal stringent response alarmone ppGpp (guanosine penta and tetra phosphates) plays a crucial role in various aspects of fundamental cell physiology (e.g., cell growth rate, cell size) and thus bacterial tolerance to and survival of external stresses, including antibiotics. In tihs study, we discuss the fundamental role of basal level of ppGpp in regulating cell homogeneity and ampicillin persistence.

Investigation of the acetic acid stress response in <i>Saccharomyces cerevisiae</i> with mutated H3 residues

Investigation of the acetic acid stress response in Saccharomyces cerevisiae with mutated H3 residues

Nitu Saha1, Swati Swagatika1 and Raghuvir Singh Tomar1

Yeast cells respond to acetic acid in diverse ways. Here, we have elucidated the deleterious effects of acetic acid on different histone mutants

The coenzyme B<sub>12</sub> precursor 5,6-dimethylbenzimidazole is a flavin antagonist in <i>Salmonella</i>

The coenzyme B12 precursor 5,6-dimethylbenzimidazole is a flavin antagonist in Salmonella

Lahiru Malalasekara1 and Jorge C. Escalante-Semerena1,*

Here we investigated why 5,6-dimethylbenzimidazole (DMB) inhibits in S. Typhimurium. Briefly, we determined that the structural similarities of the substituted benzene ring of DMB with the isoalloxazine moiety of flavins is responsible for the deleterious effects of this CoB12 precursor.

Yeast gene <i>KTI13</i> (alias <i>DPH8</i>) operates in the initiation step of diphthamide synthesis on elongation factor 2

Yeast gene KTI13 (alias DPH8) operates in the initiation step of diphthamide synthesis on elongation factor 2

Meike Arend1, Koray Ütkür1, Harmen Hawer1, Klaus Mayer2, Namit Ranjan3, Lorenz Adrian4, Ulrich Brinkmann2 and Raffael Schaffrath1

We show here that apart from its effector role for Elongator-dependent tRNA modification in yeast, Kti13 alias Dph8 also operates in step one of the diphthamide modification pathway.

Caspase 3 exhibits a yeast metacaspase proteostasis function that protects mitochondria from toxic TDP43 aggregates

Caspase 3 exhibits a yeast metacaspase proteostasis function that protects mitochondria from toxic TDP43 aggregates

Steve Brunette1,#, Anupam Sharma1,2,#, Ryan Bell1, Lawrence Puente1 and Lynn A Megeney1,2,3,*

Caspase 3 activation is a hallmark of cell death and there is a strong correlation between elevated protease activity and evolving pathology in neurodegenerative disease, such as amyotrophic lateral sclerosis (ALS). These results suggest that caspase 3 is not inherently pathogenic, but may act as a compensatory proteostasis factor, to limit TDP-43 protein inclusions and protect organelle function in aggregation related degenerative disease.

Metallothionein Cup1 attenuates nitrosative stress in the yeast Saccharomyces cerevisiae

Yuki Yoshikawa1,2,#, Ryo Nasuno1,3,#, Naoki Takaya4 and Hiroshi Takagi1,*

Our findings suggest that the yeast metallothionein Cup1 contributes to nitrosative stress tolerance, possibly as a constitutive rather than an inducible defense mechanism.

GFP fusions of Sec-routed extracellular proteins in Staphylococcus aureus reveal surface-associated coagulase in biofilms

Dominique C. S. Evans1,2,#, Amanda B. Khamas1,#, Lisbeth Marcussen1, Kristian S. Rasmussen3, Janne K. Klitgaard3, Birgitte H. Kallipolitis3, Janni Nielsen1, Daniel E. Otzen1, Mark C. Leake2,4 and Rikke L. Meyer1,5

We show that msfGFP can be used to generate extracellular fluorescent fusion proteins in S. aureus, applicable for proteins that are secreted through the Sec pathway. When fused to coagulase, msfGFP did not hinder the biological function, and the fusion protein localised to the fibrin pseudocapsule surrounding clusters of S. aureus cells.

Atg1, a key regulator of autophagy, functions to promote MAPK activation and cell death upon calcium overload in fission yeast

Teruaki Takasaki1, Ryosuke Utsumi1, Erika Shimada1, Asuka Bamba1, Kanako Hagihara2, Ryosuke Satoh1, and Reiko Sugiura1

Here, we provide evidence that the fission yeast Atg1 regulates cell death responses upon intracellular calcium load in addition to its role in promoting Pmk1 MAPK.

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Identification of SUMO conjugation sites in the budding yeast proteome

October 2, 2017

The authors present a proteomic study that mapped SUMO acceptor lysines in budding yeast, identifying 257 potential conjugation sites, including both known and novel substrates, and providing a significant resource for future research into the functional implications of SUMOylation in yeast.

Ydj1 governs fungal morphogenesis and stress response, and facilitates mitochondrial protein import via Mas1 and Mas2

October 2, 2017

The authors descibe the role of the Hsp40 chaperone Ydj1 in Candida albicans, noting its localization to the cytosol and mitochondrial membrane, its necessity for stress responses and filamentation, and its involvement in a protein interaction network related to co-chaperones, filamentation regulators, and mitochondrial processing peptidases, with a particular focus on the impact of Ydj1 on mitochondrial morphology, function, and the import of precursor proteins.

Farnesol inhibits translation to limit growth and filamentation in C. albicans and S. cerevisiae

September 4, 2017

Farnesol, a quorum-sensing molecule, inhibits the switch from yeast to filamentous growth in Candida albicans by impeding translation initiation, differing from fusel alcohols that affect the initiation factor eIF2B, as it disrupts mRNA interaction with the ribosome and prevents preinitiation complex formation.

Cristae architecture is determined by an interplay of the MICOS complex and the F1FO ATP synthase via Mic27 and Mic10

July 20, 2017

This article investigates the roles of MICOS subunits Mic27 and Mic10, revealing their antagonistic and cooperative interactions in crista junction formation and cristae membrane curvature, and proposes a model where F1FO-ATP synthase is connected to MICOS, influencing CJ formation.

Integrative modules for efficient genome engineering in yeast

June 5, 2017

The study introduces a set of vectors with integrative modules designed for effective genome integration into standard marker loci of Saccharomyces cerevisiae, enabling precise expression levels using various promoters and demonstrating the capability of stable multi-gene integration, which is useful for tasks like multi-color cellular imaging and metabolic engineering.

The neuroprotective steroid progesterone promotes mitochondrial uncoupling, reduces cytosolic calcium and augments stress resistance in yeast cells

May 31, 2017

Progesterone, known for its role in the reproductive system, also acts as a neurosteroid and has been suggested to aid recovery from traumatic brain injury; a study using yeast models shows that progesterone can protect against apoptosis, reduce oxidative stress and calcium spikes, and increase mitochondrial function, independent of traditional progesterone receptors or calcium transporters.

A simple microfluidic platform to study age-dependent protein abundance and localization changes in Saccharomyces cerevisiae

April 13, 2017

We have developed a user-friendly microfluidic system paired with a genetic approach to enrich and study ageing mother yeast cells, enabling the monitoring of protein abundance and localization changes during the crucial first half of their replicative lifespan, leading to the discovery of novel age-dependent protein behaviors.

Thiol trapping and metabolic redistribution of sulfur metabolites enable cells to overcome cysteine overload

March 27, 2017

In this study, researchers investigate the mechanisms for handling cysteine overload using Saccharomyces cerevisiae, finding that overexpressing the high affinity cysteine transporter, YCT1, enables yeast cells to rapidly accumulate high levels of intracellular cysteine. The study demonstrates that cells can manage potentially toxic levels of cysteine by converting it to non-reactive thiol forms and utilizing the metabolic products for cell growth.

The frequency of yeast [PSI+] prion formation is increased during chronological ageing

March 27, 2017

Aging is marked by a decline in cellular functions and the increased formation of the yeast [PSI+] prion, an altered translation termination factor, which suggests that autophagy suppresses age-related prion development. Interestingly, yeast cells that adopt the [PSI+] form exhibit better survival through aging, indicating that [PSI+] formation, linked to enhanced autophagy, may confer advantages such as reduced protein aggregation and improved cell viability.

A multigene family encoding surface glycoproteins in Trypanosoma congolense

March 2, 2017

Trypanosoma congolense, the causative agent of the most important livestock disease in Africa, expresses specific surface proteins involved in its parasitic lifestyle. By mining the T. congolense genome database, we identified a novel family of lectin-like glycoproteins (TcoClecs).

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