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生物膜通道是碳酸盐微生物岩中蠕虫状微观结构的成因。

A Biofilm Channel Origin for Vermiform Microstructure in Carbonate Microbialites.

机构信息

School of the Environment, San Francisco State University, San Francisco, California, USA.

Department of Geology, Bryn Mawr College, Bryn Mawr, Pennsylvania, USA.

出版信息

Geobiology. 2024 Sep-Oct;22(5):e12623. doi: 10.1111/gbi.12623.

Abstract

A three-dimensional tubular fabric known as "vermiform microstructure" in Phanerozoic and Neoproterozoic carbonate microbialites has been hypothesized to represent the body fossil of nonspicular keratose demosponges. If correct, this interpretation extends the sponge body fossil record and origin of animals to ~890 Ma. However, the veracity of the keratose sponge interpretation for vermiform microstructure remains in question, and the origin of the tubular fabric is enigmatic. Here we compare exceptionally well-preserved microbialite textures from the Upper Triassic to channel networks created by modern microbial biofilms. We demonstrate that anastomosing channel networks of similar size and geometries are produced by microbial biofilms in the absence of sponges, suggesting the origin for vermiform microstructure in ancient carbonates is not unique to sponges and perhaps best interpreted conservatively as likely microbial in origin. We present a taphonomic model of early biofilm lithification in seawater with anomalously high carbonate saturation necessary to preserve delicate microbial textures. This work has implications for the understanding of three-dimensional biofilm architecture that goes beyond the current micro-scale observations available from living biofilm experiments and suggests that biofilm channel networks have an extensive fossil record.

摘要

一种三维管状织物,在显生宙和新元古代碳酸盐微生物岩中被称为“蠕虫状微观结构”,被假设为非刺胞角质海绵动物的身体化石。如果正确,这一解释将海绵动物的身体化石记录和动物起源扩展到了约 8.9 亿年前。然而,蠕虫状微观结构的角质海绵解释的真实性仍然存在疑问,管状织物的起源也很神秘。在这里,我们比较了上三叠统中保存异常完好的微生物岩纹理和现代微生物生物膜形成的水道网络。我们证明,在没有海绵的情况下,微生物生物膜会产生类似大小和几何形状的交织水道网络,这表明古代碳酸盐中蠕虫状微观结构的起源并不独特,可能最好保守地解释为可能的微生物起源。我们提出了一个在海水早期生物膜石化的埋藏学模型,其中碳酸盐饱和度异常高,足以保存精细的微生物纹理。这项工作对于理解三维生物膜结构具有重要意义,超越了目前从活体生物膜实验中获得的微观尺度观察,并表明生物膜水道网络具有广泛的化石记录。

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