Showing posts with label microbiota. Show all posts
Showing posts with label microbiota. Show all posts

Tuesday, June 09, 2015

Hydrothermal Microbial Ecosystems Were Flourishing, Diverse During PaleoArchean

Archean (3.33 Ga) microbe-sediment systems were diverse and flourished in a hydrothermal context

Authors:

Westall et al

Abstract:

Interacting, diverse microbe-sediment systems exist in natural environments today but have not yet been recognized in the oldest records of life on Earth (older than 3.3 Ga) because of lack of distinctive biomarker molecules and patchy preservation of microbial paleocommunities. In an in-situ outcrop- to microbial-scale study, we have differentiated probable phototrophic, chemolithotrophic, and chemo-organotrophic fossil microbial signatures in a nearshore volcanogenic sedimentary setting in 3.33 Ga rocks of the Josefsdal Chert, Barberton greenstone belt, South Africa, while demonstrating the importance of contemporaneous hydrothermal activity. Hydrothermal fluids, as a nutrient source, strongly controlled the development and distribution of the microbial communities and, as a silicifying agent, contributed to their rapid fossilization. We thus show that intricate microbe-sediment systems are deep-rooted in time and that at least some early life may indeed have been thermophilic.

Friday, June 05, 2015

Adaptations of PaleoArchean Microbial Mats to Coastal Habitats


Morphological adaptations of 3.22 Ga-old tufted microbial mats to Archean coastal habitats (Moodies Group, Barberton Greenstone Belt, South Africa)

Authors:

Homann et al

Abstract:

Microbial life was well established and widespread by the Paleoarchean; however, the degree of evolutionary advancement such as microbial motility, intra- and inter-species interactions, phototropism, or oxygenic photosynthesis by that time remains highly debated. The 3.22 Ga Moodies Group in the Barberton Greenstone Belt (BGB, South Africa) are Earth's oldest well-preserved siliciclastic tidal deposits. They exhibit a unique assemblage of microbial mats, providing an excellent opportunity to decipher the morphological adaptations of microbial communities to different paleoenvironmental settings. The fossil mats are preserved as kerogenous laminations (0.5–1 mm thick) that can be traced laterally for ∼15 km in a ∼1000 m-thick succession of fine- to coarse-grained tidal sandstones and conglomerates. We here present a detailed stratigraphic and depositional facies analysis, documenting the association of the three principal mat morphotypes with specific environmental settings: (1) planar-type in coastal floodplain, (2) wavy-type in intertidal, and (3) tufted-type in upper inter- to supratidal facies. All mat types indicate a flourishing phototrophic biota; moreover, the tufted morphology suggests an intricate level of coordinated growth commonly known from cyanobacterial mats in modern environments.

Friday, November 28, 2014

Diverse Microbial Biota From Calymmian MesoProterozoic Siberia


Kotuikan Formation assemblage: a diverse organic-walled microbiota in the Mesoproterozoic Anabar succession, northern Siberia

Authors:


Vorob’eva et al

Abstract:

Abundant and diverse microfossils from shales of the Lower Member of the ∼1500-Ma-old Kotuikan Formation in northern Siberia document early Mesoproterozoic life along the Siberian Platform. Similar to many Meso- and Neoproterozoic microbiota, the Kotuikan assemblage is dominated by prokaryotic cyanobacteria, both filamentous (oscillatorialeans and nostocaleans, which are represented primarily by cellular trichomes and by empty sheaths) and coccoidal (chroococcaleans, including solitary and colonial specimens). However, unlike Mesoproterozoic microbiota of shallow-water settings, the Kotuikan compressed organic-walled microfossil assemblage in the open shelf facies includes diverse microscopic eukaryotes: large (up to ∼1-mm diameter) megasphaeromorph acritarchs, branched filaments that are most likely of eukaryotic algae and coccoidal monostromatic colonies of chlorococcaleans, as well as other morphologically complex microorganisms.

The Kotuikan assemblage contains numerous taxa previously recorded from Neoproterozoic successions (e.g., Elatera, Eosolena, Palaeastrum, Pterospermopsimorpha, Rugosoopsis and Navifusa), but these are long-ranging genera and no Neoproterozoic index fossils have been recorded. The microbiota is considered to be Mesoproterozoic in age because it contains a mixed assemblage of prokaryotic and eukaryotic microorganism remains including new taxa unknown in younger deposits. The Kotuikan assemblage documents the status of the marine biosphere at an early Mesoproterozoic time preceding the primary radiation of eukaryotes and representing an evolutionary stage transitional between the predominantly prokaryote-dominated Paleoproterozoic and the eukaryote-dominated Neoproterozoic microbiota.

As reported in this study, 35 taxa were identified in the Kotuikan assemblage (of which five forms are described informally) that are assigned to 18 genera of microscopic prokaryotes and eukaryotes. Two new genera and five new species are proposed: Hirudiforma lancetica gen. and sp. nov., H. simmetrica gen. and sp. nov., Lineaforma elongata gen. and sp. nov., Elatera minor sp. nov., Eosolena minuta sp. nov.