postpiriform transition area (PPT)

The term postpiriform transition area refers to a transition zone at the boundary between the amygdala and the cerebral cortex in the human ( Mai-1997 ), the macaque ( Paxinos-2009a ) the rat ( Swanson-2004 ) and the mouse ( Dong-2004 ). It is between the amygdala and the piriform cortex rostrally and the entorhinal cortex caudally. (In the human and the macaque the piriform cortex and entorhinal cortex are parts of the anterior parahippocampal gyrus.) Updated 26 May 2024.

Also known as: postpiriform transition area, amygdalopiriform transition area, amygdalopiriform transition area , amygdalopiriform TA

NeuroNames ID: 1971

All Names & Sources

Showing 7 synonym(s)

Language
Name
Source
English
amygdalopiriform TA
English
amygdalopiriform transition area
English
amygdalopiriform transition area
English
postpiriform transition area
English
postpiriform transition area
Species With The Structure
Equivalent By Human Macaque Rat Mouse
Internal Structure Relevant Data Not Located Relevant Data Not Located Has The Structure Has The Structure

Showing 2 record(s)

Basis
Has Equivalent
Organism
Their Name
Source
Internal Structure
Yes
postpiriform transition area
Internal Structure
Yes
postpiriform transition area
Models Where It Appears
Functional CNS Model - Rat

The Functional CNS Model - Rat (FMrat) ( Swanson-2004) is one of three hierarchical models representing the internal organization of the central nervous system (CNS). The others are the Structural CNS Model - Human (SThmn) and the Functional CNS Model - Human (FMhmn). The FMrat model represents the basic organization of the mouse ( Hof-2000 AMBA-2024 ) and, presumably, other rodents. Functional CNS models differ from structural models in that structures are defined and named by connectivity rather than by proximity to other structures at the same level. Functional models are more useful for representing longitudinal components of are grouped based on information drawn from multiple neuroscientific disciplines. such as connections, neurochemical characteristics, and role in physiogical and behavioral processes. While the Functional Model was developed primarily for an atlas of the rat brain ( Swanson-2004 ), the hierarchical organization of structures is for the most part applicable to the human, macaque, mouse and other mammalian brains as well. Structures at lower levels of the Functional CNS hierarchy are largely the same as in the Classical and Developmental Models, i.e., they were originally identified by stains for gray matter (Nissl substance) and white matter (myelin). At the next higher level they are grouped into basic connectional and functional systems of the CNS, such as the subcortical sensory systems, the brainstem motor system and the behavioral state system. At the highest levels CNS structures are grouped on the basis of dissection and embryologic precursors into cerebrum ( cerebral cortex and cerebral nuclei ), cerebellum, and cerebrospinal trunk.