2001PubMedRequires access

Functional anatomy and imaging of the foot.

C Ridola, Antonio Palma

Open publisher page 34 citations

Abstract

Increasing evidence is now available to reveal some of the underlying regulatory systems regulating early mammalian embryogenesis. These include timing, integration, multipotency, polarities and other embryological systems. This paper deals mostly with polarities and axes, and their integration with other regulatory phenomena. Various morphogenetic aspects of ovulated oocytes and cleavage planes have long been suspected as displaying gradients, and events such as ooplasmic rotation at sperm entry, the imposition of nucleolar polarity and the highly regulated cleavage planes add to this evidence. Examples of proteins that form gradients according to the embryonic axes are increasing in number, and provide molecular evidence of their nature in establishing a persistent polarity throughout early cleavage stages. The same polarised systems are also involved in the blastocyst and implantation, and their characteristics influence implantation and the post-implantation growth of the embryo. More knowledge on each of these major regulatory systems is needed to clarify the exact nature of early mammalian differentiation and organogenesis.

About this research paper

What this paper is about

Increasing evidence is now available to reveal some of the underlying regulatory systems regulating early mammalian embryogenesis. These include timing, integration, multipotency, polarities and other embryological systems. This paper deals mostly with polarities and axes, and their integration with other regulatory phenomena. Various morphogenetic aspects of ovulated oocytes and cleavage planes have long been suspected as displaying gradients, and events such as ooplasmic rotation at sperm entry, the imposition of nucleolar polarity and the highly regulated cleavage planes add to this evidence. Examples of proteins that form gradients according to the embryonic axes are increasing in number, and provide molecular evidence of their nature in establishing a persistent polarity throughout early cleavage stages. The same polarised systems are also involved in the blastocyst and implantation, and their characteristics influence implantation and the post-implantation growth of the embryo. More knowledge on each of these major regulatory systems is needed to clarify the exact nature of early mammalian differentiation and organogenesis.

Why it matters

OpenAlex reports 34 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Increasing evidence is now available to reveal some of the underlying regulatory systems regulating early mammalian embryogenesis. These include timing, integration, multipotency, polarities and other embryological systems. This paper deals mostly with polarities and axes, and their integration with other regulatory phenomena. Various morphogenetic aspects of ovulated oocytes and cleavage planes have long been suspected as displaying gradients, and events such as ooplasmic rotation at sperm entry, the imposition of nucleolar polarity and the highly regulated cleavage planes add to this evidence. Examples of proteins that form gradients according to the embryonic axes are increasing in number, and provide molecular evidence of their nature in establishing a persistent polarity throughout early cleavage stages. The same polarised systems are also involved in the blastocyst and implantation, and their characteristics influence implantation and the post-implantation growth of the embryo. More knowledge on each of these major regulatory systems is needed to clarify the exact nature of early mammalian differentiation and organogenesis.

Key concepts: Forefoot, Anatomy, Dome (geology), Calcaneus, Arch, Metatarsal bones, Foot (prosody), Metatarsophalangeal joints

Related papers

Back to paper searchBrowse research topicsOriginal source
Functional anatomy and imaging of the foot. — Research Paper | ScholarLens