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Emmerich, C.

Publications and source records attributed to Emmerich, C..

7 recordsLinked to original sources

Extracellular symbiont colonizes insect during embryo development

Insects typically acquire their beneficial microbes early in development. Endosymbionts housed intracellularly are commonly integrated during oogenesis or embryogenesis, whereas extracellular microbes are only known to be acquired after hatching by immature instars such as larvae or nymphs. Here, however, we report on an extracellular symbiont that colonises its host during embryo development. Tortoise leaf beetles (Chrysomelidae: Cassidinae) host their digestive bacterial symbiont Stammera extracellularly within foregut symbiotic organs, and in ovary-associated glands to ensure its vertical transmission. We outline the initial stages of symbiont colonization and observe that while the foregut symbiotic organs develop three days prior to larval emergence, they remain empty until the final 24 hours of embryo development. Infection by Stammera occurs during that timeframe, and prior to hatching. By experimentally manipulating symbiont availability to embryos in the egg, we describe a 12-hour developmental window governing colonization by Stammera. Symbiotic organs form normally in aposymbiotic larvae, demonstrating that these Stammera-bearing structures develop autonomously. In adults, the foregut symbiotic organs are already colonized following metamorphosis and host a stable Stammera population to facilitate folivory. The ovary-associated glands, however, initially lack Stammera. Symbiont abundance subsequently increases within these transmission organs, thereby ensuring sufficient titers at the onset of oviposition [~]29 days following metamorphosis. Collectively, our findings reveal that Stammera colonization precedes larval emergence, where its proliferation is eventually decoupled in adult beetles to match the nutritional and reproductive requirements of its host.

evolutionary biology↗

Nuclear dualism without extensive DNA elimination in the ciliate Loxodes magnus

Ciliates are unicellular eukaryotes with two distinct kinds of nuclei in each cell: transcriptionally active somatic macronuclei (MAC) and silent germline micronuclei (MIC). In the best-studied model species, both nuclei can divide asexually, but only germline MICs participate in meiosis, karyogamy, and development into new MACs. During MIC-to-MAC development, thousands of mobile element relics in the germline, called internally eliminated sequences (IESs), are excised. This genome editing enables IESs to persist by shielding them from somatic natural selection. Editing itself is a costly, time-consuming process, hypothetically maintained by evolutionary addiction. Loxodes magnus and its relatives (class Karyorelictea) are cytologically unusual because their MACs do not divide asexually, but must develop anew from mitotically generated MIC copies every cell division. Here, we report that Loxodes genome development is also unconventional. We found no canonical germline-limited IESs in Loxodes despite careful purification and long-read sequencing of MICs and MACs. The k-mer content of these nuclei overlapped, and indels found by read mapping were consistent with allele variants rather than IESs. Two other hallmarks of genome editing--domesticated DDE-family transposases and editing-associated small RNAs--were also absent. Nonetheless, histone marks, nucleosome and DNA N6-methyladenosine distributions in vegetative Loxodes cells are consistent with actively transcribed MACs and inactive MICs, like other ciliates. Both genomes, not only the MIC, were large and replete with retrotransposon sequences. Given the costs associated with genome editing, we hypothesize that karyorelicteans like Loxodes have lost or streamlined editing during MIC-to-MAC development, and have found a way out of the addictive cycle.

genomics↗

How did UGA codon translation as tryptophan evolve in certain ciliates? A critique of Kachale et al. 2023 Nature

Ciliates are a widespread clade of microbial eukaryotes with the greatest diversity of nuclear genetic codes (at least eight) following a recent addition1. All non-standard ciliate genetic codes involve stop codon reassignments1,2,3. Two of these codes are ambiguous1-3, with "stop" codons either translated or terminating translation depending on their context2,3. Ambiguous genetic codes have arisen not only in ciliates, but also independently in trypanosomatids from the genus Blastocrithidia4 and an alveolate species from the genus Amoebophrya5. Two ambiguous genetic codes in ciliates share translation of UGA "stop" codons as tryptophan with Blastocrithidia and the Amoebophrya species. tRNA genes with complementary anticodons to reassigned UAA and UAG stop codons have invariably been found in ciliate species that translate these codons1,2. Furthermore, though a UGA-cognate tRNACysUCA was reported in Euplotes6, a ciliate genus that translates UGA as cysteine, vexingly, no nuclear genome-encoded tRNATrpUCA has been found in ciliate species with UGA tryptophan codons. Recently, Kachale et al. provided evidence for UGA translation as tryptophan in Blastocrithidia nonstop and the ciliate Condylostoma magnum using 4 base pair anticodon stem (AS) near-cognate tryptophan tRNATrpCCAs, rather than the typical 5 base pair stem tRNAs7. New tRNA data we report from additional ciliates bolsters this hypothesis. Kachale et al. also hypothesised that a particular amino acid substitution in the key stop codon recognition protein, eRF1 (eukaryotic Release Factor 1), favours translation of UGA as tryptophan instead of termination7. Contrary to Kachale et al, we propose such substitutions favouring reduced eRF1 competition enhancing "stop" codon translation do not need to occur concomitantly with tRNA alterations or acquisitions to evolve new genetic codes via stop codon reassignment. We report multiple instances of the substitution investigated in Kachale et al. 2023 that have not led to UGA translation, and multiple ciliate species with UGA tryptophan translation but without the substitution, indicating it is not necessary. Consistent with the ambiguous intermediate hypothesis for genetic code evolution, experimental evidence and our observations suggest continued potential ciliate eRF1-tRNA competition.

evolutionary biology↗

ISWI1 complex proteins facilitate developmental genome editing in Paramecium

Chromatin remodeling is required for essential cellular processes, including DNA replication, DNA repair, and transcription regulation. The ciliate germline and soma are partitioned into two distinct nuclei within the same cell. During a massive editing process that forms a somatic genome, ciliates eliminate thousands of DNA sequences from a germline genome copy in the form of internal eliminated sequences (IESs). Recently we showed that the chromatin remodeler ISWI1 is required for somatic genome development in the ciliate Paramecium tetraurelia. Here we describe two paralogous proteins, ICOP1 and ICOP2, essential for DNA elimination. ICOP1 and ICOP2 are highly divergent from known proteins; the only domain detected showed distant homology to the WSD motif. We show that both ICOP1 and ICOP2 interact with the chromatin remodeler ISWI1. Upon ICOP knockdown, changes in alternative IES excision boundaries and nucleosome densities are similar to those observed for ISWI1 knockdown. We thus propose that a complex comprising ISWI1 and either or both ICOP1 and ICOP2 are needed for chromatin remodeling and accurate DNA elimination in Paramecium.

molecular biology↗

Improved methods for bulk cultivation and fixation of Loxodes ciliates for fluorescence microscopy

Loxodes is one of the best ecologically characterized ciliate genera with numerous intriguing physiological abilities, including gravity-sensing organelles and nitrate respiration. However, these cells have been considered challenging to cultivate in bulk, and are poorly preserved by conventional fixatives used for fluorescence microscopy. Here we describe methods to grow and harvest Loxodes cells in bulk with liquid soil extract medium, as well as a new fixative called ZFAE (zinc sulfate, formaldehyde, acetic acid, ethanol) that can fix Loxodes cells more effectively than buffered formaldehyde or methanol. We show that ZFAE is compatible with immunofluorescence and the nuclear stain DAPI. Loxodes is thus now amenable to long-term maintenance, large-scale growth, and modern cell biology investigations of monoclonal strains in laboratory conditions.

cell biology↗

MITE infestation of germline accommodated by genome editing in Blepharisma

During a sophisticated developmental process, ciliates excise numerous internally eliminated sequences (IESs) from a germline genome copy, producing a functional somatic genome. Most IESs ultimately originate from transposons but homology is obscured by sequence decay. To obtain more representative perspectives on ciliate genome editing, we assembled forty thousand IESs of Blepharisma stoltei, from a much earlier-diverging lineage than existing models. Short IESs (< 115 bp) were largely non-repetitive, with a pronounced ~10 bp length periodicity, whereas longer IESs (max 7 kbp) were non-periodic and contained abundant interspersed repeats. Contrary to current models, the Blepharisma germline genome encodes few transposases. Instead, its most abundant repeat (8000 copies) was a Miniature Inverted-repeat Transposable Element (MITE), apparently a deletion derivative of a germline-limited Pogo-family transposon. We propose MITEs as an important and eventually self-limiting IES source. Rather than defending germline genomes against mobile elements, we argue that transposase domestication actually facilitates junk DNA accumulation.

genomics↗

The Blepharisma stoltei macronuclear genome: towards the origins of whole genome reorganization

Massive DNA excision occurs regularly in ciliates, ubiquitous microbial eukaryotes with somatic and germline nuclei in the same cell. Tens of thousands of internally eliminated sequences (IESs) scattered throughout a copy of the ciliate germline genome are deleted during development of the streamlined somatic genome. Blepharisma represents one of the two earliest diverging ciliate classes, and, unusually, has dual pathways of somatic nuclear development, making it ideal for investigating the functioning and evolution of these processes. Here, we report the somatic genome assembly of Blepharisma stoltei strain ATCC 30299 (41 Mb), arranged as numerous alternative telomere-capped minichromosomes. This genome encodes eight PiggyBac transposase homologs liberated from transposons. All are subject to purifying selection, but just one, the putative IES excisase, has a complete catalytic triad. We propose PiggyBac homologs were ancestral excisases that enabled evolution of extensive, natural genome editing.

genomics↗