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Bob Leung

@bobpmleung.bsky.social
183 followers 270 following 5 posts

Pok Man Leung 梁博聞 | Microbiologist | BSc @hkust | Ph.D @MonashBDI | ARC DECRA Fellow and Group Leader @MonashUni

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Reposted by Bob Leung
Eric Schares @eschares.bsky.social · 31/08/2026
🚨Update: Our analysis of global APC expenditure has now been expanded to cover more publishers (7 -> 14) and more years (2019-2025). We estimate $15B in APCs paid over seven years, $3.7B in 2025 alone. Elsevier crosses the $1B threshold by itself in 2025. arxiv.org/abs/2608.16322 #ScholComm
Line chart showing 5 biggest publishers from 2019-2025
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Homeworld Collective @homeworld.bsky.social · 20/08/2026
Cave microbes are a substantial methane sink. A @cp-trendsmicrobiol.bsky.social Opinion from Sean Bay, Bob Leung, Homeworld, and @sparkclimate.bsky.social proposes enhanced subterranean aerotrophy, a prospective atmospheric methane removal pathway in caves or mines. www.cell.com/trends/micro...
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Trends in Microbiology @cp-trendsmicrobiol.bsky.social · 19/08/2026
Microbial methane oxidation in aerated subterranean ecosystems: an upscaling and intervention framework for climate change mitigation
dlvr.it
Microbial methane oxidation in aerated subterranean ecosystems: an upscaling and intervention framework for climate change mitigation
Aerated subterranean ecosystems are emerging as globally widespread yet understudied sinks for atmospheric greenhouse gases (GHGs), especially methane. Subterranean GHG cycling is driven by atmospheric exchange between the surface and subsurface, and by uptake by aerotrophic bacteria inhabiting cave surfaces. Despite growing evidence for these novel biogeochemical processes, aerated subterranean ecosystems remain largely omitted from Earth system models, GHG budgets, ecosystem service valuations, and climate change mitigation efforts. Here, we synthesise the current understanding of the subterranean microbial methane sink and provide a framework for upscaling uptake based on ventilation and biological determinants. We propose that enhanced subterranean aerotrophy could provide a novel pathway for atmospheric methane removal by leveraging caves and cave proxies as passive methane biofilters. We speculate that decommissioned mines might provide a similar opportunity. Based on this mechanistic understanding, we discuss key uncertainties and outline a research agenda to direct future research on subterranean ecosystems as a new potential lever for climate change mitigation.
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ARC Tracker @arc-tracker.bsky.social · 18/08/2026
Some substantial changes announced by ARC for next (supposedly final) rounds of some schemes, esp. Discovery Projects👇 🔹CIs can only be on one DP28 app 🔹CIs on successful DP26 or DP27 apps cannot apply 🔹Rejoinder process “has been removed and replaced with more detailed feedback to applicants” ⁉️
arc.gov.au
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ARC Tracker @arc-tracker.bsky.social · 22/07/2026
The ARC's new grant scheme table, in case you don't want to read through the details (which are here: www.arc.gov.au/system/files...)
Screenshot of a table (black text on variously shaded backgrounds) showing some main aspects of the new grant schemes announced by the ARC.
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Ákos T Kovács @evolvedbiofilm.bsky.social · 24/03/2026
Drought drives elevated antibiotic resistance across soils @natmicrobiol.nature.com from Dianne Newman with @hannahjeckel.bsky.social www.nature.com/articles/s41...
nature.com
Drought drives elevated antibiotic resistance across soils - Nature Microbiology
Drought conditions in soil systems lead to elevated concentrations of natural antibiotics, as well as the enrichment of antibiotic-resistant microorganisms, highlighting a link between climate and the...
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James Lingford @jameslingford.bsky.social · 26/02/2026
Aerobic syngas conversion: opportunities, challenges, and solutions www.sciencedirect.com/science/arti...
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James Lingford @jameslingford.bsky.social · 19/02/2026
Our work is published today: ‘Oxygen metabolism in descendants of the archaeal-eukaryotic ancestor’. This was a huge effort lead by @katyappler.bsky.social. Extremely grateful to have been a part of this amazing project! 😊🦠🧬 Links: www.nature.com/articles/s41... www.nature.com/articles/s41...
Eukaryogenesis in light of an expanded catalogue of Asgard genomes. a, Simplified, scaled timeline spanning from before the Last Asgard archaea Common Ancestor (LAsCA) to today. Thin bands mark predicted time ranges  of relevant events (for example, GOE), thicker bands represent processes  (for example, eukaryogenesis), and brackets indicate the period shown in b. The timeline further highlights milestones, including potential early eukaryotic fossils60 and the modern-day co-occurrence of Heimdallarchaeia and Alphaproteobacteria observed in this study (interaction likely originated earlier). Fig. 1 | Expanded genomic diversity of Asgard archaea. a, Maximum-likelihood phylogeny based on 47 non-ribosomal markers (NM47)using the WAG + C10 + R4 model with 100 nonparametric bootstrap pseudoreplicates, including 869 Asgardarchaeota MAGs and 309 outgroup genomes. The blue branches (lower right) indicate the new Asgardarchaeota classes, Ranarchaeia, and the recently proposed Asgardarchaeia4. The concentric rings denote (in to out): the predicted genome size, metabolic guilds based on Pfam clustering, sampling locations, and black stars on the outside mark MAGs added by this study. Asgard, Asgardarchaeia; Atabey, Atabeyarchaeia; Baldr, Baldrarchaeia; Frey/Jord,  Frey/Jordarchaeia; Gerd, Gerdarchaeales; Heimdall, Heimdallarchaeaceae;  Hel, Helarchaeales; Hermod, Hermodarchaeia; Hod, Hodarchaeales;  Kari, Kariarchaeaceae; Loki, Lokiarchaeales; Njord, Njordarchaeales;  Odin, Odinarchaeia; Ran, Ranarchaeia; Sif, Sifarchaeia; Thor, Thorarchaeia;  Wukong, Wukongarchaeia. b, SR4-recoded phylogeny of the same genome  set inferred with the model GTR + C60 + G and 100 nonparametric bootstrap pseudoreplicates (Methods). This updated catalogue constitutes a large increase in the medium- to high-quality publicly available genomes (completeness >50% and contamination and redundancy <10%) with 65.3% from the Guaymas Basin and 34.7% from the Bohai Sea. The encircled numbers represent MAGS added by this study. The scale bars in bothsubpanels represent the average number of substitutions per site.Map created in BioRender; Appler, K. https://biorender.com/147ieoc(2025).
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Jay T Lennon @jaytlennon.bsky.social · 09/02/2026
www.growkudos.com/publications... New work with @ckarakoc.bsky.social and @shoestrapped.bsky.social in @pnas.org
growkudos.com
The hidden energy cost of cellular dormancy
Many organisms survive harsh environments by switching into special survival modes. Some bacteria do this by forming spores—dormant, highly resilient cells that can persist for years or even centuries...
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Nature Reviews Microbiology @natrevmicro.nature.com · 23/01/2026
New online! Tree bark microbiota in climate-active gas cycling
dlvr.it
Tree bark microbiota in climate-active gas cycling
Nature Reviews Microbiology, Published online: 23 January 2026; doi:10.1038/s41579-026-01281-3This study reports that the tree bark microbial community actively modulates fluxes of climate-active gases and volatile organic compounds, and may mediate global atmospheric gas cycling.
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Steve Turner @sjturn.bsky.social · 23/01/2026
Fantastic new paper from @the-de-lab.bsky.social showing how the CMV m11 protein drives immune evasion by blocking CD44-dependent, FRC-mediated DC migration in the spleen, ultimately dampening antiviral CD8⁺ T cell priming @monashuniversity.bsky.social www.nature.com/articles/s41...
nature.com
Fibroblastic reticular cells direct the initiation of T cell responses via CD44 - Nature
CD44 expressed by fibroblastic reticular cells in secondary lymphoid organs regulates trafficking of dendritic cells, and thus has an essential role in the priming of T cells and the adaptive immune r...
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James Bradley @drbradbrad.bsky.social · 16/01/2026
How do new soils develop after glaciers vanish? ❄️🧬🦠🏔️ The first microbial colonisers use flexible chemoautotrophic strategies to overcome nutrient scarcity, including scavenging H2, CO and CH4 from the air! ⛅ Led by Francesco Ricci, Sean Bay @greening.bsky.social www.nature.com/articles/s41...
nature.com
Metabolically flexible microorganisms rapidly establish glacial foreland ecosystems - Nature Communications
An enduring question in ecology is how new ecosystems form. Studying retreating glaciers, this study shows that life’s first foothold in these new environments is not established by photosynthetic org...
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Leibniz Institute DSMZ @leibniz-dsmz.bsky.social · 12/01/2026
📢 DSMZ is hiring! We are looking for a Scientific Lead for the SILVA Database, a key tool for understanding microbes and biodiversity. Learn more and apply: tinyurl.com/y973v547 #HiringNow #ScienceJobs #Microbiology #ResearchCareers @dsmzd3.bsky.social
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Paul Carini @uncultured.carinilab.com · 14/01/2026
Our revised manuscript is up on BioRxiv and is coming soon to an ASM journal in your neighborhood. We show that metabolome & transcriptome profiles are frozen in desiccated Arthrobacter and that water vapor induces resuscitation. Happy to answer any Qs. www.biorxiv.org/content/10.1...
biorxiv.org
Transcriptional and metabolic stasis define desiccation-induced dormancy in the soil bacterium Arthrobacter sp. AZCC_0090 until water vapor initiates resuscitation
Microbes inhabiting soils experience periodic water deprivation. The effects of desiccation on DNA, protein, and membrane integrity are well-described. However, the effects of drying and rehydration o...
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Dr. Luke Jeffrey @jeffrethane.bsky.social · 13/01/2026
(1/8) 🚨Thrilled to share our new research, now published on the cover of @science.org ! 🌳🦠 We discovered that tree #Bark — largely regarded as inert — hosts vast #Microbial communities that actively interact with the atmosphere. 🧵👇 www.science.org/doi/10.1126/...
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ARC Tracker @arc-tracker.bsky.social · 12/01/2026
The ARC’s processes are back to being farcical, @jasonclaremp.bsky.social You advocated for a streamlined, efficient, faster ARC, but all that progress has been undone. How can they claim to fund “innovation” with more than a year between initial proposal & outcomes? It should be 6 months, not 16!
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ARC Tracker @arc-tracker.bsky.social · 12/01/2026
⁉️The ARC has delayed outcomes of ALL grants 1–4 months & increased scheduled outcome windows from 2 weeks to 3 months! This reverses 4 years of progress in providing greater certainty & ability to plan for researchers, their families & unis. Their excuse? Security checks under new ARC legislation👇
Black text on white background. Screenshot of ARC’s Network Message regarding delays to grant announcements because of new security arrangements.
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Andrea Leong @andrealeong.bsky.social · 12/01/2026
Turns out, each tree hosts trillions of bacteria in its bark, and these bacteria 'eat' certain gases right out of the air: methane, carbon monoxide, and especially hydrogen. This is important info because hydrogen helps methane persist longer in the atmosphere. theconversation.com/we-discovere...
scu.edu.au
We discovered microbes in bark ‘eat’ climate gases. This will change the way we think about trees - Southern Cross University
Tree bark microbes quietly “eat” climate‑warming gases, revealing a hidden way trees clean the air and reshaping how we think about forests.
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Damien Maher @drdamo77.bsky.social · 08/01/2026
Bark microbiota modulate climate-active gas fluxes in Australian forests | Science www.science.org/doi/10.1126/...
science.org
Bark microbiota modulate climate-active gas fluxes in Australian forests
Recent studies suggest that microbes inhabit tree bark, yet little is known about their identities, functions, and environmental roles. Here we reveal, through gene-centric and genome-resolved metagen...
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Reposted by Bob Leung
Science Magazine @science.org · 08/01/2026
New research reveals that paperbarks, among other trees, host abundant, specialized, and metabolically active bark-dwelling microbial communities that modulate climatically relevant gases, including methane, hydrogen, and carbon monoxide. Learn more this week in Science: scim.ag/4bp9hgl
This photograph, taken at the ephemeral wetland study site in Bogangar, Australia, shows a paperbark tree (Melaleuca quinquenervia)—a hardy, iconic Australian wetland species that is recognized by its layered, papery bark.
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Bob Leung @bobpmleung.bsky.social · 08/01/2026
In this week’s @science.org cover article, we discover tree bark is a hidden habitat for abundant, diverse, and specialized microbial life that actively regulate our climate 🦠. Bark isn't just an inert armor of tree but an active interface for climate and biodiversity www.science.org/eprint/7H9PX...
science.org
Bark microbiota modulate climate-active gas fluxes in Australian forests
Recent studies suggest that microbes inhabit tree bark, yet little is known about their identities, functions, and environmental roles. Here we reveal, through gene-centric and genome-resolved metagen...
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J. Makoto Tsuji @j-mako-tsuji.eurosky.social · 19/12/2025
A quick microbio present before the holidays 🎁 >150 years after their first description, filamentous "Crenothrix bacteria" are now in stable laboratory culture! In our pre-print, we probe the unique physiology & ecology of the "lacustrine" group of these enigmatic methane-oxidizing microbes... 1/2
doi.org
Isolation of Crenothrix bacteria reveals the distinct ecophysiologies of filamentous methanotrophs and adaptations to redox stress
At the dawn of modern microbiology, Cohn observed abundant filamentous bacteria in drinking water wells that he named Crenothrix polyspora. Subsequent research has revealed the methanotrophic metaboli...
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Roland Hatzenpichler @environmicrobio.bsky.social · 12/12/2025
“Cultivation of Methanonezhaarchaeia, the third class of methanogens within the phylum Thermoproteota” by @kohtzarchaeota.bsky.social, Sylvia Nupp, and myself is out in Science Advances. 90% enriched culture of a methyl-dismutating thermoproteotal methanogen. #Microsky 🧪 tinyurl.com/bdcc3uzs
science.org
Cultivation of Methanonezhaarchaeia, the third class of methanogens within the phylum Thermoproteota
The cultivation of a group of methanogens illuminates their metabolic diversity and the evolution of archaea.
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Dr. Luke Jeffrey @jeffrethane.bsky.social · 19/11/2025
New #PrePrint by #PhD @jodittmann.bsky.social open for discussion on @egubg.bsky.social investigating the question: 'Are #GhostForests a substantial source of #Methane from #Reservoirs?' 👻🪵 👇 egusphere.copernicus.org/preprints/20...
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Anne Daebeler @anne-daebeler.bsky.social · 19/11/2025
📢 Extra, extra: our collaborative study on trace gas oxidizers in a warmer soil is out as a preprint www.biorxiv.org/content/10.1... Big thanks to @thanh0109.bsky.social @bobpmleung.bsky.social @wutkowska.bsky.social @andreasrichter.bsky.social @mathildebio.bsky.social @greening.bsky.social ...
biorxiv.org
Soil trace gas oxidizers divergently respond to short- and long-term warming
The upland soil microbiome is dominated by aerobic bacteria that oxidize atmospheric trace gases, including CO, H2, and CH4. As a result, soils are the largest biological sink for these climate-active...
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Roland Hatzenpichler @environmicrobio.bsky.social · 16/10/2025
New preprint: Methyl co-enzme M reductase encoding (potentially methanogenic) Thermoproteota are widespread and transcriptionally active in diverse anoxic ecosystems! @dr-zj.bsky.social, Matthew Kollom & @emileyeloe-fadrosh.bsky.social www.biorxiv.org/cgi/content/... Funded by the DOE BER program.
A diagram showing the environmental distribution of methyl coenzyme M reductase encoding Thermoproteota.
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Jeremy Barr @jeremyjbarr.bsky.social · 15/10/2025
Very excited to share the latest work from our lab, which was published today in Nature! nature.com/articles/s41... PhD graduate and now post-doc Sofia Dahlman, along with co-senior author Sam Forster from The Hudson and other researchers from our lab and others.
nature.com
Isolation, engineering and ecology of temperate phages from the human gut - Nature
Human host-associated cellular products may act as induction agents for bacteriophages.
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Rhys Grinter @rhyswg.bsky.social · 20/09/2025
The outer membrane of Gram-negative bacteria blocks many antibiotics. Our latest work reveals that L-type pyocins bypass this barrier by inactivating the BAM complex, killing Pseudomonas aeruginosa without entering the cell, providing a new blueprint for beating antibiotic resistance.
biorxiv.org
A Protein Antibiotic Inhibits the BAM Complex to Kill Without Cell Entry
Many antibiotics are ineffective against Gram-negative pathogens such as Pseudomonas aeruginosa because they cannot penetrate the bacterial outer membrane. Here, we show that protein antibiotics calle...
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bioRxiv Microbiology @biorxiv-microbiol.bsky.social · 17/09/2025
Carbon monoxide metabolism in freshwater anaerobic methanotrophic archaea www.biorxiv.org/content/10.1101/202…
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James Bradley @drbradbrad.bsky.social · 15/09/2025
📢 PLEASE RT! ❄️ M2 Masters Internship: Metagenomic analysis of microbial cold adaptation in the cryosphere 🧬 Compile & curate ice nucleation & cold-adaptation protein database 🖥️ Build HMM profiles 🦠 Analyze existing metagenomic data using HMMs ☀️ Marseille, France Apply by 15 Oct
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James Bradley @drbradbrad.bsky.social · 10/09/2025
2 Postdoc vacancies: Microbial dormancy in the cryosphere @erc.europa.eu #ERC_SIESTA 📢 PLEASE RT Experimental: 🧬 Single cell microbial activity measurements, flow cytometry, omics, biogeochem Modelling: 🖥️ Bioenergetics, thermodynamics, ecological, biogeochem ☀️ Marseille, France ‼️ Apply by 30 Sept
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STCmicrobeblog @stcmicrobeblog.bsky.social · 21/08/2025
schaechter.asmblog.org/schaechter/2... #MicroSky
schaechter.asmblog.org
Elio (1928-2025)
by The STC Team — Losing a close friend always saddens one deeply, regardless of age. Losing a person who has so immensely influenced our worldview through his guidance and example makes the sadness e...
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Berkeley Lab @berkeleylab.lbl.gov · 18/08/2025
🧪 🥼 🥽 Looking for tools to answer questions related to energy and infrastructure security? Now's your chance to apply for an investigator role at Berkeley Lab's @jgi.doe.gov. Apply today! ⬇️ Deadline: September 9 Please share!
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Hiro Imachi @hiro-imachi.bsky.social · 01/08/2025
“Isolation of a new methanotroph belonging to Mycobacterium” is now out! Awesome work by my former postdoc Hiromi Kambara, who led this project all the way. journals.asm.org/doi/10.1128/...
journals.asm.org
First isolation of a methanotrophic Mycobacterium reveals ammonia- and pH-tolerant methane oxidation | Applied and Environmental Microbiology
Methane is a significant contributor to climate change (27 times more potent as a greenhouse gas than carbon dioxide), and the largest biological sink is methane-oxidizing bacteria: methanotrophs. Alt...
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Debnath Ghosal @debnathghosal.bsky.social · 25/07/2025
📣 New paper alert! One of the most exciting projects we've done in recent years is now out on BioRxiv: "An Asgard archaeon from a modern analog of ancient microbial mats". Glimpse into early complex life! ❄️🦠 🔬🧬 www.biorxiv.org/content/10.1.... A thread...
biorxiv.org
An Asgard archaeon from a modern analog of ancient microbial mats
It has been proposed that eukaryotic cells evolved via symbiosis between sulfate-reducing bacteria and hydrogen-producing archaea. Here we describe a highly enriched culture of a novel Asgard archaeon...
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Chris Greening @greening.bsky.social · 25/07/2025
Our article showing energy production from air alone is in PNAS today. This paper provides an ultimate biochemical proof that microbes can survive simply by 'making' energy from air (making two ATP per molecule atmospheric H2 consumed) and has biotech applications. www.pnas.org/doi/10.1073/...
pnas.org
ATP synthesis driven by atmospheric hydrogen concentrations | PNAS
All cells require a continuous supply of the universal energy currency, adenosine triphosphate (ATP), to drive countless cellular reactions. The un...
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Mike Jetten @msmjetten.bsky.social · 23/07/2025
Congratulations 🎉 now on line at @isme-microbes.bsky.social : Comparative genome analysis reveals broad phylogenetic and functional diversity within the order #Nitrospirales Linnea Kop et al #microbiology @ribesresearch.bsky.social (RIBES) icw @univie.ac.at academic.oup.com/ismej/advanc...
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Ben J Woodcroft @benjwoodcroft.bsky.social · 16/07/2025
Out in @natbiotech.nature.com: Metagenome taxonomy profilers usually ignore unknown species. SingleM is an accurate profiler which doesn't, even detecting phyla with no MAGs. Profiles of 700,000 metagenomes at sandpiper.qut.edu.au. A 🧵
Logo for the Sandpiper website
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kohtzarchaeota.bsky.social @kohtzarchaeota.bsky.social · 01/07/2025
New #methanogen culture just dropped! Check out the 'Methanonezhaarchaeia'! Happy to see this one out. A new methylotrophic methanogen cultivated from a hot spring in Yellowstone National Park. Gives insights into the metabolic diversity and evolution of this group. #microsky 🦠🔥 tinyurl.com/yw8ku2bj
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Roland Hatzenpichler @environmicrobio.bsky.social · 26/06/2025
Preprint🚨 #microsky 🦠 “Cultivation of Methanonezhaarchaeia, the third class of methanogens within the phylum Thermoproteota”, authored by @kohtzarchaeota.bsky.social & Sylvia Nupp, expands the diversity of methanogens! 90% enriched, methylotrophic culture from a hot spring. A 🧵 tinyurl.com/yw8ku2bj
Enrichment cultivation and visualization of Ca. Methanonezhaarchaeum fastidiosum
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Craig White @craig-white.bsky.social · 24/06/2025
In about a week we (Biological Sciences @ Monash Uni in Melbourne, Australia) will be opening a search for 3 (!!!) permanent academic positions (40% research, 40% teaching, 20% service) at Lecturer/Senior Lecturer. 1 Genomics, 2 Ecology. Please share, email me, DM, follow, send carrier pigeons…
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Noah Fierer @noahfierer.bsky.social · 21/06/2025
Hope this is useful - consensus statement "Guidelines for preventing and reporting contamination in low-biomass microbiome studies" rdcu.be/er3Io
rdcu.be
Guidelines for preventing and reporting contamination in low-biomass microbiome studies
Nature Microbiology - In this Consensus Statement, the authors outline strategies for processing, analysing and interpreting low-biomass microbiome samples, and provide recommendations to minimize...
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Hiro Imachi @hiro-imachi.bsky.social · 04/06/2025
Would you like to work with us? At JAMSTEC, we are recruiting postdoctoral researchers through the Young Research Fellow program. This program allows fellows to independently pursue their own research projects. www.jamstec.go.jp/recruit/e/jy...
jamstec.go.jp
JAMSTEC Young Research Fellow (JYRF) | JAMSTEC - JAPAN AGENCY FOR MARINE-EARTH SCIENCE AND TECHNOLOGY
JAMSTEC Young Research Fellow (JYRF)
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Dr Zahra Islam @zahra-f-islam.bsky.social · 29/05/2025
Very excited to share that I’ve been awarded the @aussocmic.bsky.social 2025 Jim Pittard Award! (alongside the fantastic Rhys Parry and Heema Vyas!) 🦠 🌾 The award recognises the important contributions of Aus researchers to microbiology at the ECR stage, as well as their contributions to ASM.
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Trevor Lithgow @trevor-lithgow.bsky.social · 20/05/2025
We are recruiting for a PhD student who wants to understand how bacterial membranes are built and how they function. It would be a biology meets maths project … if this piques your interest take a look here: macsys.org/monash-phd-s... for project details and contact info
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Hayley Newton @hayleyjnewton.bsky.social · 25/04/2025
Very proud of this story - driven by @laurenbird.bsky.social -uncovering the ways Coxiella messes with the lysosome. This has been such a fun collaboration with @lauraem-lab.bsky.social raising many new questions! @monashuniversity.bsky.social @thedohertyinst.bsky.social @natcommag.bsky.social
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Jeremy Barr @jeremyjbarr.bsky.social · 15/04/2025
The T-series bacteriophages have impacted my career and are microbes our lab's research continues to use as model organisms. You can read more as part of @natmicrobiol.nature.com 'Microbes Matter' series below: www.nature.com/articles/s41...
nature.com
The T-series bacteriophages are reductionist models that continue to shape the field - Nature Microbiology
Jeremy Barr discusses how he began studying bacteriophages, the historic use of the T-series phages and how they have shaped the field.
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Joint Genome Institute @jgi.doe.gov · 09/04/2025
Congratulations to the 30 new users whose proposals have been accepted for our New Investigator call, part of our #CommunityScience Program. Learn more about their projects below. jointgeno.me/CSPNI_FY25 🖥️🧬🧪🦠🌱🍄 @nigelmouncey.bsky.social @axelvisel.bsky.social @berkeleylab.lbl.gov
jointgeno.me
JGI Announces 2025 New Investigator Portfolio | Joint Genome Institute
Pictured from left: [Top] Bill J.
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Mike Jetten @msmjetten.bsky.social · 25/03/2025
Innovations in the electron transport chain fuel archaeal methane metabolism www.sciencedirect.com/science/arti...
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Phil B. Pope @microbesrule.bsky.social · 26/03/2025
The Centre for Microbiome Research @cmrqut.bsky.social is looking for a postdoc dedicated to advancing our understanding towards the microbiological, biochemical and genetic processes that cause methanogenesis in the cow rumen. More info 👇
qut.nga.net.au
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