Abstract
Just-so stories are prominent in human evolution literature because of our tendency to create simple progressionist narratives about our “special” place in nature, despite the fact that these stories are almost exclusively based on hard tissue data. How can we be so certain about the evolution of human facial communication, bipedalism, tool use, or speech without detailed knowledge of the internal anatomy of for instance, one of the two extant species more closely related to us, the bonobos? Here I show how many of these stories now become obsolete, after such a comprehensive knowledge on the anatomy of bonobos and other primates is finally put together. Each and every muscle that has been long accepted to be “uniquely human” and to provide “crucial singular functional adaptations” for our bipedalism, tool use and/or vocal/facial communication, is actually present as an intra-specific variant or even as normal phenotype in bonobos and/or other apes.
Just-so stories (Smith, ) are frequent in the literature about human evolution because of our tendency to build simple progressionist narratives about our “special” evolutionary history and place in nature (Gould, , ). This is particularly striking because these stories are in reality almost exclusively based on hard tissue data. In fact, descriptions of the soft tissues of apes have been relatively scarce and mainly referred to just a few muscles of the head or limbs of a single taxon, in most cases (e.g., Tyson, ; Bischoff, ; Raven, ; Swindler and Wood, ; Diogo and Wood, , ; Persaud and Loukas, ). For instance, the only study that specifically focused on the musculature of bonobos (Pan paniscus) was that of Miller (), which was based on dissections of a single adult and did not provide information for numerous head and limb muscles (Diogo and Wood, , ). Strikingly, despite this scarcity of information, biologists and anthropologists have displayed a remarkable confidence in their stories about the origin and evolution of human soft tissues, including their phylogenetic distribution and “singular functional adaptations.”
To illustrate this fact, in this short paper I will refer here briefly to seven muscles that have long been generally seen as “unique human features” and linked with specific adaptations for our bipedalism, tool use, and vocal or facial communication. Firstly, the facial expression muscle risorius (Figure 1) has been generally accepted as a unique feature crucial for the evolution of our “gracile” smile and “specially sophisticated” facial communication abilities (Huber, ). In a very influential paper, Susman et al. argued—although (fortunately) not as confidently as the assertions done by some of the other authors cited here—that the hand muscle adductor pollicis accessorius (Figure 2; “Henle” or “interosseous volaris primus” muscle: Bello-Hellegouarch et al., ) is a unique feature likely related to our increased ability to manufacture and/or use tools (Susman et al., ). Similarly, the foot muscle adductor hallucis accessorius—which topologically corresponds to the adductor pollicis accessorius of the hand—is also often considered to be uniquely found in our bipedal species, being at least consistently present at early stages of our ontogenetic development (Cihak, ). The foot muscle fibularis tertius (Figure 3) is, according to Lewis' () highly influential monograph on the evolution of our limbs, a unique feature most likely associated with our bipedal evolution (Lewis, ). The flexor pollicis longus and extensor pollicis brevis (Figure 2) are forearm muscles that insert onto the thumb and that are generally considered to be unique adaptations for human tool manufacture and use (Lewis, ). For instance, it has been experimentally shown that the recruitment to these two muscles allows human subjects to maintain the metacarpophalangeal joint in extension while flexing the distal phalanx of the thumb, i.e., two primary movements usually done when we grab/manipulate objects (Marzke et al., ; Williams et al., ). Lastly, the laryngeal muscle arytenoideus obliquus has long been considered to be a unique feature of humans—which also have an arytenoideus transversus, in contrast to the single arytenoideus muscle said to occur in all other primates—associated to our enhanced vocal communication (reviewed in Diogo and Wood, ).
Figure 1
Figure 2

Differences between forelimb muscles of common chimps, bonobos and humans, based and modified from Diogo et al. (
Figure 3

Differences between hindlimb muscles of common chimps, bonobos and humans, based and modified from Diogo et al. (
In the last years, my colleagues and I compiled the scarce information available in the literature on primate muscles and compared it to the results obtained from our dissections of representatives of all major primate groups, in order to test assertions and accepted ideas such as those mentioned in the above paragraph (Diogo et al.,
The fibularis tertius, commonly associated with human bipedalism (e.g., Lewis,
Figure 4

(A)Pan paniscus (ZIMS 164052, Ano, fetus female): dorsolateral view of the superficial muscles of the left foot. Extensor digitorum longus is detached showing the fibularis tertius tendon going to the fifth metatarsal. Modified from Diogo et al.'s photographic atlas of bonobos Diogo et al. (
Figure 5

(A)Pan paniscus: top ZIMS 164047, Jasiri, adolescent female; bottom ZIMS 164052, Ano, fetus female. Plantar view of the deep muscles of the foot, showing the presence of adductor hallucis accessorius (interosseous volaris primus of Henle). Modified from Diogo et al.'s photographic atlas of bonobos Diogo et al. (
Another assumption that is taken for granted is that our hand/forearm structures are highly derived, when compared to those of great apes (e.g., Susman et al.,
In fact, our recent dissections and comparisons revealed that in hylobatids—which are the living sister-group of the great-ape + human clade—the tendon is not only stout but, strikingly, is also part of a distinct flexor pollicis longus muscle, exactly as seen in humans (Diogo et al.,
Therefore, the detailed study of the internal anatomy of our closest relatives, the apes, exposes the fallacy of the simplistic and progressivist narratives that have been accepted for so long—and continue to be—, often as dogmas. Only the strong bias toward a vision of humans as so special and specialized, associated with a clearly outdated extreme adaptationist framework (see Diogo,
Statements
Author contributions
The author confirms being the sole contributor of this work and approved it for publication.
Acknowledgments
I would like to thank the team of researchers that paved the way for and, or contributed to the dissections of the bonobos that I lead at the Antwerp University in Belgium, as well as all the other people that were previously involved in the dissections and scanning of common chimpanzees, gorillas, orangutans, hylobatids, and other primate and non-primate mammals. Among these researchers I want to thank in particular to Sandra Nauwelaerts (Univ. Antwerp, Belgium) for making the bonobo dissections possible, Francisco Pastor (Univ. Valladolid, Spain) for providing most of the other ape specimens that we studied during these years, and Bernard Wood for being first my advisor and then my closer colleague during all these years of study of primate internal anatomy. This project has received funding from NSF grants 1516557 and 1440624 to RD.
Conflict of interest
The author declares that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
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Summary
Keywords
chimpanzees, apes, bonobos, biological anthropology, functional morphology, muscles, human evolution
Citation
Diogo R (2018) First Detailed Anatomical Study of Bonobos Reveals Intra-Specific Variations and Exposes Just-So Stories of Human Evolution, Bipedalism, and Tool Use. Front. Ecol. Evol. 6:53. doi: 10.3389/fevo.2018.00053
Received
11 February 2018
Accepted
11 April 2018
Published
26 April 2018
Volume
6 - 2018
Edited by
Sergio Balari, Universidad Autónoma de Barcelona, Spain
Reviewed by
Pedro Martinez, Universitat de Barcelona, Spain; Frietson Galis, Naturalis Biodiversity Center, Netherlands; Laura Nuño De La Rosa, KLI Institute, Austria
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© 2018 Diogo.
This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
*Correspondence: Rui Diogo rui.diogo@howard.edu
This article was submitted to Evolutionary Developmental Biology, a section of the journal Frontiers in Ecology and Evolution
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