Person: Knoll, Andrew
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Publication Exceptional Preservation of Fossils in an Upper Proterozoic Shale
(Nature Publishing Group, 1988) Butterfield, Nicholas J.; Knoll, Andrew; Swett, KeeneLate Proterozoic organisms must have been diverse and widely distributed, but in general their fossil record is both taxonomically and environmentally limited. Exceptional preservation of Proterozoic fossils is not unknown, but it is usually associated with silicified carbonates from restricted peritidal or playa lake environments. We report here an exceptionally well preserved and distinctive assemblage of Lake Proterozoic fossils from subtidal marine shales. In additional to the sphaeromorphic acritarchs and cyanobacterial sheaths routinely preserved in Proterozoic rocks, this assemblage includes multicellular algae ('seaweeds'), a diverse assortment of morphologically complex protistan vesicles, and probable heterotrophic bacteria. Thus, it provides one of the clearest and most taxonomically varied views of Proterozoic life yet reported.
Publication Sr Isotopic Variations in Upper Proterozoic carbonates from Svalbard and East Greenland
(Elsevier, 1989) Derry, Louis A.; Keto, Lisette S.; Jacobsen, Stein; Knoll, Andrew; Swett, KeeneWe report initial Sr(87)/Sr(86) values from an Upper Proterozoic carbonate succession from Svalbard and East Greenland. This succession, now tectonically separated into three sequences, is thick, relatively continuous, and well preserved. The relative ages of the samples from within the basin are well constrained by litho-, bio-, and chemostratigraphic techniques. The data from this study and related data from the literature are used to construct a curve of Sr(87)/Sr(86) for Upper Proterozoic seawater. The new data reported in this study substantially improve the isotopic record of Sr in sea water for the period between 650 and 800 Ma. The data indicate that delta Sr(87) values of seawater were variable but low (delta Sr(87) ~ -500 to -250) between 900 and 650 Ma, and rose rapidly to ~ +30 by 600 Ma. The range of variation of delta Sr(*7) in seawater during the Riphean-Vendian exceeds the entire range of delta Sr(87) in seawater during the Phanerozoic. While variation in the average isotopic composition of Sr delivered to the oceans by rivers can account for some of the observed range, changes in the ratio of submarine hydrothermal flux to river water (continental) flux are responsible for the large variation in seawater Sr isotopic composition. Changes in the continental flux of Sr to the oceans can be related to tectonic factors. Large changes in the hydrothermal flux to river water flux ratio indicated by the data could have significant consequences for the chemistry of the ocean-atmosphere system.
Publication Microfossils from Oolites and Pisolites of the Upper Proterozoic Eleonore Bay Group, Central East Greenland
(Society of Economic Paleontologists and Mineralogists, 1988) Green, Julian W.; Knoll, Andrew; Swett, KeeneSilicified oolites and pisolites from Bed 18 of the Upper Proterozoic (about 700-800 Ma) Limestone-Dolomite "Series" of the Eleonore Bay Group, central East Greenland, contain a diverse suite of organically preserved microfossils that is, for the most part, unlike assemblages previously described from Proterozoic cherts and shales. Three principal assemblages occur in these rocks: 1) a clast-bound assemblage found in detrital carbonate grains (now silicified) that served as nuclei for ooid and pisoid growth, as well as in uncoated mud and mat clasts that were carried into the zone of ooid and pisoid deposition; 2) an epilithic and interstitial assemblage consisting of microorganisms that occured on top of and between grains; and 3) a euendolithic assemblage composed of microbes that actively bored into coated grains. The Upper Proterozoic euendolithic assemblage closely resembles a community of euendolithic cyanobacteria found today in shallow marine ooid sands of the Bahama Banks. Thirteen species are described, of which eight are new, five representing new genera: Eohyella dichotoma n. sp., Eohyella endoatracta n. sp., Eohyella rectoclad n. sp., Thylacocausticus globorum n. gen. and sp., Cunicularius halleri n. gen. and sp., Graviglomus incrustus n. gen. and sp., Perulagranum obovatum n. gen. and sp., and Parenchymodiscus endolithicus n. gen. and sp.
Publication Review: The Archean
(American Association for the Advancement of Science, 1988) Knoll, AndrewPublication Paleobiology of Distinctive Benthic Microfossils from the Upper Proterozoic Limestone-Dolomite "Series," Central East Greenland
(Botanical Society of America, 1987) Knoll, Andrew; Swett, Keene; Golubic, Stjepko; Greene, Julian W.Populations of Polybessurus bipartitus Fairchild ex Green et al., a large and morphologically distinctive microfossil, occur in silicified carbonates of the Upper Proterozoic (700-800 Ma) Limestone-Dolomite "Series," central East Greenland. Large populations of well-preserved individuals permit reconstruction of P. bipartitus as a coccoidal unicell that "jetted" upward from the sediment surface by the highly unidirectional secretion of extracellular mucopolysaccharide envelopes. Reproduction by baeocyte formation is inferred on the basis of clustered envelope stalks produced by small cells. Sedimentological evidence indicates that P. bipartitus formed surficial crusts locally within a shallow peritidal carbonate platform. Among living microorganisms a close morphological, reproductive, and behavioral counterpart to Polybessurus is provided by populations of an as yet undescribed cyanobacterium found in coastal Bahamian environments similar to those in which the Proterozoic fossils occur. In general morphology and "jetting" behavior, this population resembles species of the genus Cyanostylon Geitler (1925), but reproduces via baeocyte formation. Polybessurus is but one of the more than two dozen taxa in the richly fossiliferous biota of the Limestone-Dolomite "Series." This distinctive population, along with co-occuring filamentous cyanobacteria and other microfossils, contribute to an increasingly refined picture of ecological heterogeneity in late Proterozoic oceans.