• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

泡沫贻贝:通过乳化作用在 Gryphaeidae 中产生泡沫状微观结构。

Foamy oysters: vesicular microstructure production in the Gryphaeidae via emulsification.

机构信息

Departamento de Estratigrafía y Paleontología, Universidad de Granada, 18071 Granada, Spain.

Instituto Andaluz de Ciencias de la Tierra, CSIC-Universidad de Granada, 18100 Armilla, Spain.

出版信息

J R Soc Interface. 2020 Sep;17(170):20200505. doi: 10.1098/rsif.2020.0505. Epub 2020 Sep 30.

DOI:10.1098/rsif.2020.0505
PMID:32993433
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7536044/
Abstract

The vesicular microstructure is a very distinctive arrangement of calcite, consisting of hollow cavities (vesicles) of diverse sizes and shapes, usually elongated in the direction of shell thickening. It is uniquely found among living bivalves in a single oyster family, Gryphaeidae. The vesicles are distributed in lenses interleaved with compact foliated layers. We have studied the morphology and distribution of vesicles within the lenses using optical and electron microscopy, and micro-computed tomography. At a small scale, vesicles do not follow a classical von Neumann-Mullins route typical of ideal foams. At a larger scale, the initiation and evolution of a vesicular layer statistically proceed like a foam, with vesicles becoming more numerous, larger and more even in size. In summary, the vesicular material follows a foam-like coarsening to reduce the number of energetically costly interfaces. However, a steady state is never reached because the animal permanently introduces energy in the system by creating new vesicles. The fabrication of the vesicular material is mediated by the production of an emulsion between the extrapallial fluid and the precursor PILP of the calcitic walls within the thin extrapallial space. For this mechanism to proceed, the mantle cells must perform highly sophisticated behaviours of contact recognition and secretion. Accordingly, the vesicular material is under mixed physical-biological control.

摘要

泡状微观结构是方解石非常独特的排列方式,由大小和形状各异的中空腔(泡)组成,通常沿贝壳加厚方向拉长。它仅存在于珍珠贝目 Gryphaeidae 中的单一牡蛎科的活体双壳类动物中。这些泡状结构分布在与密集的片状层交错的透镜体中。我们使用光学显微镜和电子显微镜以及微计算机断层扫描技术研究了透镜体中泡的形态和分布。在较小的尺度上,泡状结构不遵循典型理想泡沫的冯·诺依曼-缪尔林经典路径。在较大的尺度上,泡状层的起始和演化在统计上类似于泡沫,泡状结构的数量、大小和均匀度都在增加。总之,泡状物质通过类似泡沫的粗化来减少能量成本高的界面数量。然而,由于动物通过产生新的泡来不断向系统中引入能量,因此永远无法达到稳定状态。泡状物质的形成是通过外套膜外腔中额外的液体和碳酸钙壁的前体 PILP 之间产生乳液来介导的。为了使这种机制进行,外套膜细胞必须进行高度复杂的接触识别和分泌行为。因此,泡状物质受到物理-生物混合控制。

相似文献

1
Foamy oysters: vesicular microstructure production in the Gryphaeidae via emulsification.泡沫贻贝:通过乳化作用在 Gryphaeidae 中产生泡沫状微观结构。
J R Soc Interface. 2020 Sep;17(170):20200505. doi: 10.1098/rsif.2020.0505. Epub 2020 Sep 30.
2
Origin and expansion of foliated microstructure in pteriomorph bivalves.翼形双壳类叶状微结构的起源与扩展
Biol Bull. 2008 Apr;214(2):153-65. doi: 10.2307/25066672.
3
Bending and branching of calcite laths in the foliated microstructure of pectinoidean bivalves occurs at coherent crystal lattice orientation.方解石薄片在扇贝形双壳类的片状微结构中弯曲和分枝,发生在相干晶格取向处。
J Struct Biol. 2019 Mar 1;205(3):7-17. doi: 10.1016/j.jsb.2018.12.003. Epub 2018 Dec 19.
4
Crystallographic structure of the foliated calcite of bivalves.双壳类叶状方解石的晶体结构。
J Struct Biol. 2007 Feb;157(2):393-402. doi: 10.1016/j.jsb.2006.09.005. Epub 2006 Oct 11.
5
Shell-adductor muscle attachment and Ca transport in the bivalves Ostrea stentina and Anomia ephippium.瓣鳃纲动物中壳肌附着和 Ca 转运的研究——以文蛤和珠带拟蝉虾为例。
Acta Biomater. 2021 Jan 15;120:249-262. doi: 10.1016/j.actbio.2020.09.053. Epub 2020 Oct 6.
6
Structure and crystallography of foliated and chalk shell microstructures of the oyster Magallana: the same materials grown under different conditions.牡蛎 Magallana 的片状和 chalk shell 微观结构的结构和晶体学:在不同条件下生长的相同材料。
Sci Rep. 2018 May 14;8(1):7507. doi: 10.1038/s41598-018-25923-6.
7
Organic membranes determine the pattern of the columnar prismatic layer of mollusc shells.有机膜决定了软体动物贝壳柱状棱柱层的形态。
Proc Biol Sci. 2016 May 11;283(1830). doi: 10.1098/rspb.2016.0032.
8
The nature and formation of calcitic columnar prismatic shell layers in pteriomorphian bivalves.翼形双壳类动物中钙质柱状棱柱壳层的性质与形成
Biomaterials. 2005 Nov;26(32):6404-14. doi: 10.1016/j.biomaterials.2005.04.016.
9
SEM observation of structural (non-mineralogical) alteration inside the previously crystallized nacreous layer of Crenomytilus grayanus (Bivalvia: Mytilidae).扫描电镜观察圆顶珠母贝(双壳纲:贻贝科)已结晶珍珠层内部结构(非矿物学)的变化。
Micron. 2013 Jan;44:479-82. doi: 10.1016/j.micron.2012.09.004. Epub 2012 Sep 12.
10
Crystallographic control of the fabrication of an extremely sophisticated shell surface microornament in the glass scallop Catillopecten.在玻璃扇贝 Catillopecten 中,晶体学控制制造极其复杂的壳表面微饰纹。
Sci Rep. 2022 Jul 7;12(1):11510. doi: 10.1038/s41598-022-15796-1.

引用本文的文献

1
Chromosome-level haplotype-resolved genome assembly of the giant honeycomb oyster, Hyotissa hyotis.巨型蜂窝牡蛎(Hyotissa hyotis)的染色体水平单倍型解析基因组组装
Sci Data. 2025 Jul 30;12(1):1327. doi: 10.1038/s41597-025-05675-5.
2
The complete mitochondrial genome of (Bivalvia, Ostreoidea) indicates the genetic diversity within Gryphaeidae.(双壳纲,牡蛎超科)的完整线粒体基因组揭示了蛎鹬科内的遗传多样性。
Biodivers Data J. 2023 Mar 20;11:e101333. doi: 10.3897/BDJ.11.e101333. eCollection 2023.
3
Multi-omic insights into the formation and evolution of a novel shell microstructure in oysters.对牡蛎新型壳微观结构形成和演化的多组学研究
BMC Biol. 2023 Sep 29;21(1):204. doi: 10.1186/s12915-023-01706-y.
4
Crystallographic control of the fabrication of an extremely sophisticated shell surface microornament in the glass scallop Catillopecten.在玻璃扇贝 Catillopecten 中,晶体学控制制造极其复杂的壳表面微饰纹。
Sci Rep. 2022 Jul 7;12(1):11510. doi: 10.1038/s41598-022-15796-1.
5
The argonaut constructs its shell via physical self-organization and coordinated cell sensorial activity.船蛸通过物理自组织和协调的细胞感官活动构建其外壳。
iScience. 2021 Oct 15;24(11):103288. doi: 10.1016/j.isci.2021.103288. eCollection 2021 Nov 19.

本文引用的文献

1
Anisotropy of Mechanical Properties of Mollusk Shell.软体动物贝壳力学性能的各向异性
Nanomaterials (Basel). 2020 Mar 28;10(4):634. doi: 10.3390/nano10040634.
2
Biogenic carbonate mercury and marine temperature records reveal global influence of Late Cretaceous Deccan Traps.生物成因碳酸盐汞与海洋温度记录揭示白垩纪晚期德干暗色岩的全球影响
Nat Commun. 2019 Dec 16;10(1):5356. doi: 10.1038/s41467-019-13366-0.
3
Calcite fibre formation in modern brachiopod shells.现代腕足动物壳中方解石纤维的形成。
Sci Rep. 2019 Jan 24;9(1):598. doi: 10.1038/s41598-018-36959-z.
4
Biomimetic oyster shell-replicated topography alters the behaviour of human skeletal stem cells.仿生牡蛎壳复制的形貌改变人类骨骼干细胞的行为。
J Tissue Eng. 2018 Sep 4;9:2041731418794007. doi: 10.1177/2041731418794007. eCollection 2018 Jan-Dec.
5
Microscopic structure of the polymer-induced liquid precursor for calcium carbonate.聚合物诱导碳酸钙液体前体的微观结构。
Nat Commun. 2018 Jul 3;9(1):2582. doi: 10.1038/s41467-018-05006-w.
6
Structure and crystallography of foliated and chalk shell microstructures of the oyster Magallana: the same materials grown under different conditions.牡蛎 Magallana 的片状和 chalk shell 微观结构的结构和晶体学:在不同条件下生长的相同材料。
Sci Rep. 2018 May 14;8(1):7507. doi: 10.1038/s41598-018-25923-6.
7
Nacre Topography Produces Higher Crystallinity in Bone than Chemically Induced Osteogenesis.珍珠层形貌比化学诱导成骨产生更高的结晶度。
ACS Nano. 2017 Jul 25;11(7):6717-6727. doi: 10.1021/acsnano.7b01044. Epub 2017 Jul 5.
8
Cymbiola nobilis shell: Toughening mechanisms in a crossed-lamellar structure.高贵宝螺壳:层状交错结构中的增韧机制。
Sci Rep. 2017 Jan 17;7:40043. doi: 10.1038/srep40043.
9
Biological strategy for the fabrication of highly ordered aragonite helices: the microstructure of the cavolinioidean gastropods.制造高度有序文石螺旋的生物学策略:卡沃利尼腹足纲动物的微观结构。
Sci Rep. 2016 May 16;6:25989. doi: 10.1038/srep25989.
10
Organic membranes determine the pattern of the columnar prismatic layer of mollusc shells.有机膜决定了软体动物贝壳柱状棱柱层的形态。
Proc Biol Sci. 2016 May 11;283(1830). doi: 10.1098/rspb.2016.0032.