Israel Hershkovitz, Bruce Latimer, Martin Haeusler, Janan Abbas, Mila Hejja, Bahaa Medlej, Hanan Rapoport, Einat Kedar, David Ezra, Ian Rybak, Tatiana Sella Tunis, Irit Zohar, Gali Dar
The evolution of human bipedalism has traditionally been reconstructed from the pelvis and lower limb, whereas the contribution of the vertebral motion segment has received far less attention. This study introduces the vertebral apophyseal ring (AR) as a novel proxy for reconstructing spinal biomechanics in fossil hominins. Several vertebrae with complete ARs from Australopithecus afarensis A.L. 288-1 were compared with vertebrae from 240 adult modern humans, a Neanderthal (Kebara), an Upper Paleolithic modern human (Ohalo II), 20 chimpanzees (Pan troglodytes), and 24 gorillas (Gorilla gorilla). Vertebral body and AR dimensions were measured from vertebrae T4-L5 (L4 in apes), and corresponding ratios were calculated. Statistical differences between modern humans and African apes were assessed using Welch's analysis of variance followed by Games-Howell post hoc tests. Relative AR size in A.L. 288-1 consistently falls within the range of chimpanzees and gorillas rather than modern humans, indicating that A. afarensis spinal motion segments differed functionally from those of modern humans. Because AR reduction is associated with enlargement of the nucleus pulposus, our findings suggest that spinal adaptations necessary for efficient load absorption, torsional flexibility, and endurance locomotion evolved later in human evolution. These results indicate that the evolution of humanlike bipedalism was a gradual and mosaic process. Although Australopithecus possessed the fundamental capacity for upright walking, it retained primitive spinal features indicative of a less optimized locomotor system. The emergence of a fully modern human gait, therefore, involved progressive reorganization of the vertebral motion segment rather than a single evolutionary transition.