Alex Chase 🧬🌋🌊

@microbomics.bsky.social

Assist Prof of Earth Sciences at SMU Microbial ecologist 🔬🦠 English bulldog enthusiast 🐶🐾

I'm excited to share our new perspective in Biogeosciences: omics to connect microbial cells to planetary biogeochemistry. Entry points for soil, ocean, air, ice, paleo-archives, plus a cross-ecosystem table of omics resources: coverage, limits, standards. doi.org/10.5194/bg-2...

Ideas and perspectives: Using meta-omics to unravel biogeochemical changes from cell to planetary scales

Abstract. Increased human impacts on Earth systems are radically altering biogeochemical cycles. While long-term environmental observatories and Earth System Models (ESMs) provide valuable insights in...

doi.org

I’m excited to launch Microbial Planet, a new editorial-style section of the Chase Lab website for short research dispatches on microbial ecology, evolution, environmental genomics, biogeochemistry, and microbial chemical ecology.

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man sometimes I absolutely love this job, but the other side really bums me out... after 9mo review on career, I get: "we know that it does! We have know this for decades!" "intellectual novelty...is non-existent" "PI isn't corr author...calls to question prior exp. as claimed" "low productivity"

🧫 Graduate students wanted - microbial edition The Chase Lab at SMU Earth Sciences is looking for microbial humans: adaptive, collaborative, and occasionally anaerobic. If you get excited about connecting sequence data to actual biology, come join the experiment. 🌍 Dallas, TX 🔗 microbomics.com

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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/...

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...

pnas.org

New work led by the amazing @aprillukowski.bsky.social lab. Love working on these interdisciplinary projects discovering new chemical diversity in nature. Microbes are the best chemists! pubs.acs.org/doi/10.1021/...

Metagenomic Identification of Brominated Indole Biosynthetic Machinery from Cyanobacteria

Halogenated indole natural products have been isolated from a variety of organisms, including plants, marine algae, marine invertebrates, and bacteria. Aquatic cyanobacteria, in particular, are rich producers of brominated indoles, but their cognate biosynthetic enzymes have only been successfully linked in a limited number of natural products, such as the eagle-killing toxin aetokthonotoxin (AETX). The biosynthetic pathway for AETX involves five enzymes, two of which were previously undescribed due to incomplete annotations as hypothetical proteins. Our recent elucidation of AETX biosynthesis established functions of the two previously unknown proteins as enzymes responsible for tryptophan halogenation (AetF) and nitrile synthesis (AetD). Given their sequence novelty, we queried metagenomic data sets for these two enzymes and identified two new cyanobacterial haloindole biosynthetic gene clusters (BGCs) from marine sediment in Moorea, French Polynesia, and soil-derived samples in Maunawili Falls, Hawaii. We characterized the recovered BGCs by biochemically validating a new AetF homologue that exclusively halogenates free indole, rather than tryptophan as observed in AETX biosynthesis, and a new AetD homologue that harbors distinct substrate preferences, expanding the scope of nitrile biosynthesis. Additional characterization of core and accessory enzymes within these AETX-like BGCs highlights the breadth and diversity of haloindole biosynthetic machinery in cyanobacteria.

pubs.acs.org

If you're in DFW next week, come join us for our 3rd Annual SMU Energy, Environment, and Natural Resources (EENR) Colloquium. Exciting invited speakers and panels addressing science, industry, and law about pressing #envsci issues 📍 SMU 📅 Friday May 2 🌎🌱🛰️🍃♻️💡

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#mevosky Last semester: reading group on micro evolution - trying to understand in natural communities. Wanted to share! 🧬🦠 1. Start with THE classic paper on MAGs Community structure and metabolism through reconstruction of microbial genomes from the environment www.nature.com/articles/nat...

Community structure and metabolism through reconstruction of microbial genomes from the environment - Nature

Nature - Community structure and metabolism through reconstruction of microbial genomes from the environment

nature.com

Some of my first year grad students in my class are asking for books to read that will get them thinking about what questions to ask and how to know what they should ask. I have a couple of recs but wondering if anyone can help. What inspired you??