概括
软组织的化石化可能发生在有机体,如,内部矿化与酸. 这个过程是由生物体驱动的.
科学领域:
- 古生物学的古生物学
- 生物矿物化 生物矿物化
- 地质化学 地质化学
背景情况:
- 显著的化石往往保留了软组织的细胞细节.
- 这种保存通常归因于酸的矿化.
- 现有的理论认为,这需要沉积物孔水中的高酸盐度.
研究的目的:
- 研究软组织矿化和化石化的替代机制.
- 为了确定有机体是否可以为矿化提供自己的酸盐.
- 了解有利于细胞细节在化石中保存的条件.
主要方法:
- 使用现代的进行了腐烂实验.
- 被置于没有氧气的条件下.
- 在4至8周的时间内,分析了矿物化.
主要成果:
- 在无形酸盐中部分矿化,保留肌肉组织细胞细节.
- 自己的组织作为酸的来源.
- 矿化开始在2周内,伴随着pH值下降,并随着时间的推移而增加.
- 这种内部矿化过程有效地阻止了软组织形态的退化.
结论:
- 由生物体本身产生的酸的内部矿化是一种可行的软组织保存机制.
- 这一过程在缺乏氧气的环境中尤其有效,例如由微生物所造成的环境.
- 这些发现挑战了外在酸盐来源总是为异常软组织化石化所必需的假设.
相关概念视频
The Fossil Record
The fossil record documents only a small fraction of all organisms that have ever inhabited Earth. Fossilization is a rare process, and most organisms never become fossils. Moreover, the fossil record only exhibits fossils that have been discovered. Nevertheless, sedimentary rock fossils of long-lived, abundant, hard-bodied organisms dominate the fossil record. These fossils offer valuable information, such as an organism's physical form, behavior, and age. Studying the fossil record helps...
Fixation and Sectioning
Two basic types of preparation are used to visualize specimens with a light microscope: wet mounts and fixed specimens.
The simplest type of preparation is the wet mount, in which the specimen is placed in a drop of liquid on the slide. A liquid specimen can be directly deposited on the slide using a dropper. Solid specimens, such as skin scraping, can be placed on the slide before adding a drop of liquid to prepare the wet mount. Sometimes the liquid is simply water, but stains are often added...
The simplest type of preparation is the wet mount, in which the specimen is placed in a drop of liquid on the slide. A liquid specimen can be directly deposited on the slide using a dropper. Solid specimens, such as skin scraping, can be placed on the slide before adding a drop of liquid to prepare the wet mount. Sometimes the liquid is simply water, but stains are often added...
Carbon Skeletons
Life on Earth is carbon-based, as all macromolecules that make up living organisms contain carbon atoms. All organic compounds have a carbon backbone. Each carbon atom is tetravalent and can bond with four other atoms, making it an extraordinarily flexible component of biological molecules. Because carbon’s valence electrons are stable, it rarely becomes an ion. As the carbon chain increases in length, structural modifications such as ring structures, double bonds, and branching side chains...


