Lunate sulcus
In brain anatomy, the lunate sulcus or simian sulcus, also known as the sulcus lunatus, is a fissure in the occipital lobe variably found in humans and more often larger when present in apes and monkeys. The lunate sulcus marks the transition between V1 and V2, the primary and secondary visual cortices.
The lunate sulcus lies further back in the human brain than in the chimpanzee's. The evolutionary expansion in humans of the areas in front of the lunate sulcus would have caused a shift in the location of the fissure. Evolutionary pressures may have resulted in the human brain undergoing internal reorganization to develop the capability of language. It has been speculated that this reorganization is implemented during early maturity and is responsible for eidetic imagery in some adolescents.
During early development, the neural connections in the prefrontal cortex and posterior parietal lobe rapidly expand to allow capability for human language, while visual memory capacity of human brain would become limited. Biological studies have demonstrated that the lunate sulcus is subject to white matter growth, and dental fossil and tomography studies have shown that the brain organization of Australopithecus africanus is pongid-like.
History
The lunate sulcus was first identified during the early 1900s in the human brain as a homologue of the Affenspalte, a major sulcus defining the primary visual cortex in apes and other monkey species, by anatomist and Egyptologist Grafton Elliot Smith. Based on Smith’s observations from studying over 400 Egyptian human and ape brains, he believed that the sulcal patterns between humans and apes were similar. His methodology involved mapping cortical areas via simple visual inspection of endocasts from mummies, as well as fresh whole and sectioned brains. Paleoneurologists study endocasts to gather information about brain size and shape, as well as sulcal patterns resulting from pressure-induced impressions by the brain’s surface. Comparison of data gathered from endocasts and the brains of living hominoids allows scientists to study the evolution of the human brain, both anatomically and cognitively. Ultimately, Smith argued that the lunate sulcus was responsible for delineating the rostrolateral boundary of the V1 in both humans and non-human primates, and he placed the lunate sulcus in chimpanzee more rostral than that in human. Based on this observation, he was the first to hypothesize that the caudal shift of the lunate sulcus in Homo sapiens was due to the evolutionary rapid overgrowth of the cerebral cortex that is unique to human neurodevelopment.Smith’s observation that the caudal shift of the lunate sulcus could also be used as a predictor for determining both the evolutionary posterolateral shift of the occipital lobes/V1 and the corresponding expansion of the neighboring parietotemporo-occipital visual association cortices was supported by recent research. However, some neuroanatomists today disagree with Smith’s assertion that a lunate sulcus exists in humans, arguing that there is only an Affenspalte which is unique to apes. Specifically, in a high-resolution MRI study conducted by Allen et al., the researchers scanned and analyzed 220 human brains and found no sign of the lunate sulcus homologue. Based on this finding, they suggested that the claim asserting humans have a lunate sulcus homologue fails to account for and show appreciation of the extensive evolutionary reorganization of the visual cortex in humans.