At greater than 3.7 Gyr, Earth's oldest known supracrustal rocks, comprised dominantly of mafic igneous with less common sedimentary units including banded iron formation (BIF), are exposed in southwest Greenland. Regionally, they were intruded by younger tonalites, and then both were intensely dynamothermally metamorphosed to granulite facies (the highest pressures and temperatures generally encountered in the Earth's crust during metamorphism) in the Archaean and subsequently at lower grades until about 1500 Myr ago. Claims for the first preserved life on Earth have been based on the occurrence of greater than 3.8 Gyr isotopically light C occurring as graphite inclusions within apatite crystals from a 5 m thick purported BIF on the island of Akilia. Detailed geologic mapping and observations there indicate that the banding, first claimed to be depositional, is clearly deformational in origin. Furthermore, the mineralogy of the supposed BIF, being dominated by pyroxene, amphibole and quartz, is unlike well-known BIF from the Isua Greenstone Belt (IGB), but resembles enclosing mafic and ultramafic igneous rocks modified by metasomatism and repeated metamorphic recrystallization. This scenario parsimoniously links the geology, whole-rock geochemistry, 2.7 Gyr single crystal zircon ages in the unit, an approximately 1500 Myr age for apatites that lack any graphite, non-MIF sulphur isotopes in the unit and an inconclusive Fe isotope signature. Although both putative body fossils and carbon-12 enriched isotopes in graphite described at Isua are better explained by abiotic processes, more fruitful targets for examining the earliest stages in the emergence of life remain within greater than 3.7 Gyr IGB, which preserves BIF and other rocks that unambiguously formed at Earth's surface.
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http://dx.doi.org/10.1098/rstb.2006.1836 | DOI Listing |
Neurology
October 2024
From the VIB Center for Molecular Neurology (M.V., R.R., V.B., S.W.); Department of Biomedical Sciences (M.V., M.V.B., S.W., R.R.), University of Antwerp, Belgium; Department of Neurology (E.M.R., M.F.M.), David Geffen School of Medicine, University of California, Los Angeles; Department of Neurology (N.C.-L., V.K.R., T.K., K.K., B.F.B.); Department of Psychiatry and Psychology (N.C.-L., J.A.F., D.S.K., L.K.F.), Mayo Clinic, Rochester, MN; Department of Epidemiology and Biostatistics (J.K.), University of California, San Francisco; Department of Quantitative Health Sciences (C.M., D.E.B.), Mayo Clinic, Rochester, MN; Department of Neurology (A.M.S., A.A.W.), Memory and Aging Center, University of California, San Francisco; Weill Institute for Neurosciences, San Francisco, California; Institute for Precision Health (D.H.G.), Departments of Neurology, Psychiatry and Human Genetics at David Geffen School of Medicine, UCLA; Department of Neuroscience (T.G., L.P., M.B., N.R.G.-R.), Mayo Clinic, Jacksonville, FL; Alzheimer's Disease and Other Cognitive Disorders Unit (S.B.-É.), Neurology Service, Hospital Clínic de Barcelona, Institut d'Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS), Fundació Clínic per a la Recerca Biomèdica, Uni; Department of Neurology (B.A., B.C.D.), Case Western Reserve University, Cleveland, OH; Department of Neurology (S.B.), University of Michigan, Ann Arbor; Department of Neurology (A.C.B.), University of North Carolina, Chapel Hill; Department of Neurology (D.C.), Indiana University, Indianapolis; Department of Neurology (R.R.D.), Vanderbilt University, Nashville, TN; Department of Neurology (K.D.-R.), University of Washington, Seattle, WA; Department of Neurosciences (D.G., G.C.L., I.L.), University of California, San Diego, La Jolla; Departments of Neurology and Psychiatry (N.G.), Washington University School of Medicine, Washington University, St. Louis, MO; Department of Psychiatry and Behavioral Sciences (I.M.G.), Northwestern Feinberg School of Medicine, Chicago, IL; Taub Institute for Research on Alzheimer's Disease and the Aging Brain (L.S.H.), College of Physicians and Surgeons; Department of Neurology (L.S.H.), Columbia University, New York; Division of Neurology (G.-Y.R.H.), University of British Columbia, Vancouver, Canada; Department of Psychiatry and Human Behavior (E.D.H.), Alpert Medical School of Brown University, Providence, RI; Department of Neurology and Penn Frontotemporal Degeneration Center (D.J.I.), Perelman School of Medicine, University of Pennsylvania, Philadelphia; National Institute of Neurological Disorders and Stroke (J.Y.K., A.S.), National Institutes of Health, Bethesda, MD; Department of Neurology (J.C.M., B.P.), Houston Methodist, TX; Department of Psychiatry and Behavioral Sciences (C.U.O.), Johns Hopkins University, Baltimore, MD; Department of Neurology (P.S.P.), University of Colorado, Aurora; Cleveland Clinic Lou Ruvo Center for Brain Health (A.R., D.W.), Las Vegas, NV; Department of Neurology (E.D.R.), University of Alabama at Birmingham; Glenn Biggs Institute for Alzheimer's & Neurodegenerative Diseases (A.C.S.), UT Health San Antonio; Tanz Centre for Research in Neurodegenerative Diseases (M.C.T.), Division of Neurology, University of Toronto, Ontario, Canada; Department of Neurology (H.W.H., A.L.B., H.J.R.), Memory and Aging Center, University of California, San Francisco; Weill Institute for Neurosciences, San Francisco, CA; and Department of Neuroscience (R.R.), Mayo Clinic, Jacksonville, FL.
PLoS One
April 2024
Department of Animal Science, Washington State University, Pullman, Washington, United States of America.
Feeding high-gain diets and an inadequate energy and protein ratio during pre-puberty may lead to impaired growth and mammary gland development of heifers. Thus, frequent application of bovine somatotropin (bST) may prevent future losses in productivity, improve mammary development and animal performance. We aimed to evaluate the effects of bST on digestibility, performance, blood metabolites, mammary gland development, and carcass composition of high-performance prepubertal Holstein × Gyr heifers.
View Article and Find Full Text PDFArch Dis Child
July 2024
Deakin Health Economics, Institute for Health Transformation, School of Health and Social Development, Faculty of Health, Deakin University, Geelong, Victoria, Australia.
J Dairy Sci
August 2024
School of Veterinary Medicine and Animal Science, São Paulo State University (UNESP), Botucatu, SP 18618-000, Brazil. Electronic address:
This study aimed to evaluate the effects of direct-fed microbials (DFM) on health and growth responses of preweaning Bos indicus × Bos taurus (Gyr × Holstein) crossbred calves. Ninety newborn heifer calves (initial BW of 35 ± 4.0 kg) were used.
View Article and Find Full Text PDFRes Vet Sci
May 2024
Escola de Veterinária da Universidade Federal de Minas Gerais, Departamento de Zootecnia, Belo Horizonte, Minas Gerais 30161-970, Brazil. Electronic address:
This retrospective cohort study aimed to identify risk factors for the failure of transfer of passive immunity (FPI) in preweaned dairy calves, explore its associations with morbidity, mortality, genetics, and determine a standardized cut-off point for FPI. Analyzing data from 6011 calves, factors such as sire predicted transmitted ability for milk (PTA), birth season, retained placenta (RP), total serum protein concentration (TSP), morbidity (neonatal calf diarrhea - NCD, bovine respiratory disease - BRD, tick-borne disease - TBD), mortality, and average daily weight gain (ADG) were considered. The calves were categorized into predominantly Gyr (PG) and predominantly Holstein (PH) genetic composition groups.
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