Katrin Hammerschmidt

@khammerschmidt.bsky.social

Evolution, Microbiology, Multicellularity, Division of Labour, Major Transitions in Evolution, Life Cycles, Symbiosis Kiel University

1/35 New preprint! We show that obligate multicellularity removes fundamental population genetic barriers to multicellular adaptation. Even a brief unicellular phase can dramatically constrain the evolution of beneficial multicellular traits. www.biorxiv.org/content/10.6...

Obligate multicellularity circumvents population genetic barriers to collective-level adaptation

Complex multicellularity has evolved in just five lineages (animals, plants, brown algae, red algae, and fungi) and in each case, these organisms develop clonally and are obligately multicellular. While prior work has shown that clonal development plays a critical role in the evolution of complex multicellularity, none has disentangled this from the impact of obligate vs facultative multicellular life cycles. Here we use experimental evolution with engineered snowflake yeast ( Saccharomyces cerevisiae ) to directly test how life cycle structure affects multicellular adaptation. We created isogenic strains capable of switching between unicellular and clonal multicellular phases, then evolved populations for 192 days under obligately multicellular, facultatively multicellular, and obligately unicellular regimes. Obligately multicellular populations rapidly evolved larger size, primarily driven by a whole genome duplication, in all five replicates. Facultative populations showed dramatically constrained evolution, with tetraploidy evolving in only 2/10 facultative populations despite experiments demonstrating that it is strongly beneficial across the full life cycle. Mathematical modeling reveals the mechanistic basis for this constraint: facultative life cycles create establishment barriers through two population genetic effects. Group formation dramatically reduces the number of units of selection, making beneficial multicellular mutations vulnerable to drift. This asymmetry in population size between life cycle phases also allows cell-level selection to overpower group-level selection, eliminating mutations that provide group-level benefits but carry cell-level costs. These findings demonstrate that obligate multicellularity circumvents fundamental population genetic barriers to collective-level adaptation, helping explain why complex multicellularity has evolved exclusively in obligately multicellular lineages, and suggesting similar constraints may operate in other evolutionary transitions in individuality. ### Competing Interest Statement The authors have declared no competing interest. U.S. National Science Foundation, https://ror.org/021nxhr62, DEB-1845363 Howard Hughes Medical Institute Gilliam Fellowship National Science Foundation Graduate Research Fellowship

biorxiv.org

Now out in AEM @asm.org! 🎉🧪 *High school student-isolated mutants 👉🏻 novel genetic causes of biofilm-associated adaptations *We learn how diversity arises quickly and is maintained *EvolvingSTEM enables scalable research in classrooms & promotes scientific literacy journals.asm.org/eprint/FBU9M...

Genetic diversification of Pseudomonas fluorescens maintained by multi-niche selection within biofilms | Applied and Environmental Microbiology

Bacterial biofilms dominate microbial life; however, their evolutionary genetics remain incompletely understood. Extensive replication of biofilm selection experiments by secondary school students can...

journals.asm.org

Vaughn Cooper@vscooper.micropopbio.org · last yr.

Sharing the most significant work from my group, led by the @evolvingstem.bsky.social team. Come for the discoveries of how Pseudomonas adapts in biofilms, stay for the story of how they were discovered by thousands of young scientists in grades 9-12. 🧪🧫🧬🧵 www.biorxiv.org/content/10.1...

in 2013, Elio was so fascinated by the 'heterologous multicellularity' of 𝘊𝘩𝘭𝘰𝘳𝘰𝘤𝘩𝘳𝘰𝘮𝘢𝘵𝘪𝘶𝘮 𝘢𝘨𝘨𝘳𝘦𝘨𝘢𝘵𝘶𝘮 that he chose a cross-section to celebrate STC's 10th anniversary 🙂 👉 smallthingsconsidered.blog/schaechter/2... #MicroSky

𝘊𝘩𝘭𝘰𝘳𝘰𝘤𝘩𝘳𝘰𝘮𝘢𝘵𝘪𝘶𝘮 𝘢𝘨𝘨𝘳𝘦𝘨𝘢𝘵𝘶𝘮
cross-section
STCmicrobeblog@stcmicrobeblog.bsky.social · 8mo ago

have you ever heard of "bacterial heterologous multicellularity" ? meet 𝘊𝘩𝘭𝘰𝘳𝘰𝘤𝘩𝘳𝘰𝘮𝘢𝘵𝘪𝘶𝘮 𝘢𝘨𝘨𝘳𝘦𝘨𝘢𝘵𝘶𝘮, once thought to be one species, but it's actually two... #MicroSky #SymbioSky (from the STC archive)

1/28 New preprint up, which I think is the best theoretical idea I've ever had. We asked a simple question: what are the costs of investment into non-reproductive somatic cells? Turns out these costs decrease with the *logarithm* of organism size! www.biorxiv.org/content/10.6...

The fitness costs of reproductive specialization scale inversely with organismal size

The evolution of reproductive specialization represents a fundamental innovation in multicellular life, yet the conditions favoring its evolution remain poorly understood. Here, we develop a populatio...

biorxiv.org

I am very excited to announce that a fully funded PhD position is available in my group. Topic: Synergistic coevolution in mono-specific and multi-species microbial consortia Please RT or forward this information to interested candidates. Deadline: 11.01.26 More info: shorturl.at/f1TuF

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Very proud that @gauravathreya.bsky.social's brilliant work based on his Master's thesis is out as his first paper in @asn-amnat.bsky.social. Interested in host-symbiont interdependence, eukaryogenesis, evolutionary transitions in individuality, and some great theory to back it?...check out the🧵👇

Gaurav Athreya@gauravathreya.bsky.social · last yr.

Interested in host-symbiont interdependence, eukaryogenesis, and evolutionary transitions in individuality? my first paper just came out! With @gokhalecs.bsky.social and Pete Czuppon, we study when & how individuality emerges in a host-endosymbiont collective doi.org/10.1086/737588 a short thread🧵:

figure 1 from https://doi.org/10.1086/737588 describing (a) our conceptualisation of an evolutionary transition in individuality, (b) an interpretation of the traits that we consider in our mathematical model, and (c) a graphical representation of the population dynamics in the model.

We loved hearing @khammerschmidt.bsky.social talk about evolution at the #MultiBac2025 conference this January - check out the @asm.org report on the origins of early microbial life!

Katrin Hammerschmidt@khammerschmidt.bsky.social · last yr.

Happy to have been part of EVOLUTION & MECHANISMS GOVERNING MULTICELLULARITY—one of 3 workshops behind @asm.org’s new report. Big questions, great conversations—looking back on origins of microbial life and what lies ahead. Highly recommended read: asm.org/reports/earl... #MicroSky #MEvoSky #EvoSky

Kimberly Chen, a former postdoc in my lab, has published a new article in Genome Biology and Evolution. Selection on mixed populations of Chlamydomonas resulted in the evolution of multicellular structures, all from 2 of 10 founder strains. www.linkedin.com/in/kimberly-... doi.org/10.1093/gbe/...

Genetic Predisposition Toward Multicellularity in Chlamydomonas reinhardtii

Abstract. The evolution from unicellular to multicellular organisms facilitates further phenotypic innovations, notably cellular differentiation. Multiple

doi.org