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Department of Archaeology

 
Read more at: After The Plague

After The Plague

A multi-disciplinary research project focusing on St. John's Hospital cemetery, Cambridge, with an aim to learn more about the lives of the medieval urban poor during the bubonic plague epidemic known as the Black Death.


Read more at: EndoMap - Mapping the brain of our ancestors

EndoMap - Mapping the brain of our ancestors

Tracking the early emergence of derived Homo-like cerebral features in the hominin fossil record can be expected to contribute to an understanding of the timing (i.e., chronology) and mode (i.e., process) of critical brain changes. Because brain tissue is not preserved in the fossil record, studies of hominin brain evolution focus on brain endocasts (i.e., replicas of the inner table of the bony braincase).


Read more at: Exploring locomotor and biomechanical diversity in the hominin fossil record based on long bone external morphology

Exploring locomotor and biomechanical diversity in the hominin fossil record based on long bone external morphology

Our knowledge of human evolution is limited by several factors. One is tightly linked to the nature of the fossil record, as bones of our extinct human relatives and other primate species rarely appear in archaeological and paleontological sites, and when they do, they very commonly appear in an isolated fashion and/or are highly fragmented. These factors more severely affect studies of limb bones, which have been vaguely analysed or even ignored in certain cases.


Read more at: How to build a hominin: predictive simulations of locomotion in human evolution

How to build a hominin: predictive simulations of locomotion in human evolution

How did our ancestors walk? Perhaps the greatest challenge that this question has posed in the past, is the lack of methodological applications in which no study has previously reconstructed how our ancestors moved using biomechanical modelling techniques. We need to consider not just individual bones when reconstructing movement, but to look at the full body to begin to tell the story of our ancestors’ movement. Muscles animate our body, permitting us to walk, run and even dance. We must reconstruct the muscles of the body to understand ancestral locomotion.


Read more at: In Africa: The role of East Africa in the evolution of human diversity

In Africa: The role of East Africa in the evolution of human diversity

In Africa is a five-year research programme to investigate the origins of our species - Homo sapiens - and its diversity in Africa, and aims at making new discoveries of early human fossils, archaeological sites and their environmental context.

Read more at: In silico analysis of fossil hominin remains from the Sterkfontein Caves (South Africa)

In silico analysis of fossil hominin remains from the Sterkfontein Caves (South Africa)

Despite recent progress in molecular analyses and the constant increase of the hominin remains in the fossil record, the chronological, geographical and evolutionary context of the emergence of the genus Homo remains largely debated. More importantly, the identity of our direct ancestors and assessment of the adaptations characterizing our genus remain unclear.


Read more at: NG’IPALAJEM: The evolutionary landscape of modern human origins in Africa

NG’IPALAJEM: The evolutionary landscape of modern human origins in Africa

Our understanding of the origins of our species, Homo sapiens, has undergone a major shift. New fossils, dates and genomic studies have consolidated our African origin. Yet, they also indicate a deeper past, involving multiple events. These events stretch to nearly three quarters of a million years ago (Ma), and take the problem of modern human origins into an entirely different climatic and ecological context.


Read more at: Palaeoanalytics

Palaeoanalytics

Human evolution is a central research area in biology and anthropology and has a history of research going back more than 150 years. For most of that time, evidence has come from digging up fossils and archaeological remains. Research in human evolution has been transformed by the impact of genomics and the development of ancient DNA methodologies, producing new insights into past demography, dispersal and admixture patterns, social behaviour, selection, disease history, and more.


Read more at: PaleoErgo: Exploring Hand-Stone Tool Interactions in Early Hominins

PaleoErgo: Exploring Hand-Stone Tool Interactions in Early Hominins

How did the biomechanics and ergonomics of the human hand influence the use and production of Palaeolithic stone tools? Traditionally, stone tools have been analyzed for their morphological properties and technological characteristics to infer the cognitive and social evolution of early hominins and modern humans. However, the role of musculoskeletal aspects in the effective use of these tools has been largely overlooked, resulting in an incomplete understanding of Palaeolithic technologies.


Read more at: Shanidar Cave Project

Shanidar Cave Project

Shanidar cave viewed from the south (Photograph: Graeme Barker) 

The Shanidar Cave Project


Read more at: Wisdom Teeth: Refining our understanding of mammalian evolution through dating dental enamel

Wisdom Teeth: Refining our understanding of mammalian evolution through dating dental enamel

As the complex mosaic of Quaternary human lineages across and beyond Africa becomes increasingly apparent, an accurate chronology is critical to disentangle the patterns and process, particularly those that link human evolution to palaeoenvironmental and climatic change.