Literature DB >> 32236122

Immature remains and the first partial skeleton of a juvenile Homo naledi, a late Middle Pleistocene hominin from South Africa.

Debra R Bolter1,2, Marina C Elliott1, John Hawks1,3, Lee R Berger1.   

Abstract

Immature remains are critical for understanding maturational processes in hominin species as well as for interpreting changes in ontogenetic development in hominin evolution. The study of these subjects is hindered by the fact that associated juvenile remains are extremely rare in the hominin fossil record. Here we describe an assemblage of immature remains of Homo naledi recovered from the 2013-2014 excavation season. From this assemblage, we attribute 16 postcranial elements and a partial mandible with some dentition to a single juvenile Homo naledi individual. The find includes postcranial elements never before discovered as immature elements in the sub-equatorial early hominin fossil record, and contributes new data to the field of hominin ontogeny.

Entities:  

Year:  2020        PMID: 32236122      PMCID: PMC7112188          DOI: 10.1371/journal.pone.0230440

Source DB:  PubMed          Journal:  PLoS One        ISSN: 1932-6203            Impact factor:   3.240


Introduction

Our knowledge of maturational processes and life history stages in human evolution is hindered by how extremely rare immature remains are in the hominin fossil record. Further complicating our understanding is that hominin fossil remains rarely combine teeth, cranial and associated postcranial bones, and only a handful of such partial skeletons represent immature individuals. Yet such remains provide important evidence about the maturation of extinct hominins. Apart from recent modern humans and Neanderthals (e.g., [1]), only three hominin species are represented by immature partial skeletons at this time: Australopithecus afarensis [2, 3], Australopithecus sediba [4,5] and Homo erectus [6-9]. Augmenting this limited dataset is of great significance in trying to understand the evolution of human growth and development. The immature individuals from the Dinaledi and Lesedi assemblages of Homo naledi represent individuals of many juvenile and adult life stages, presenting a unique opportunity to identify and document in particular a range of immature individuals of an extinct species, and contribute data to the study of comparative hominin ontogeny [10-13]. The Lesedi Chamber sample includes an associated partial skeleton of an adult individual, a jaw fragment from a second adult, and the remains of a very young juvenile [12]. The Dinaledi Chamber sample is much richer in fossil material, with the remains of a minimum of 15 individuals, ranging in age from neonates to older adults and dating to between 335,000 and 226,000 years ago [10,11,13,14]. The geology and taphonomy of the Dinaledi Chamber material has been described previously by Dirks et al. [11]. To sum up, the Dinaledi Chamber is an approximately 3 x 5 m chamber located within an interconnected network of cave passages and spaces now designated as the Dinaledi Subsystem [15]. The Subsystem itself is connected to the larger Rising Star Cave System by a narrow, 12 m high vertical passage known as the Chute [11]. Like most other hominin fossil sites in the area, the cave system formed within the stromatolite-rich dolomite of the Monte Christo Formation [16]. The fossils are not encased in hard breccia, but are recovered from largely unconsolidated mudstone sediments that are distinct from those outside the subsystem, suggesting an autochthonous derivation [11]. The presence of some articulated and semi-articulated remains in the Dinaledi deposit, as well as small elements that normally disarticulate and disperse quickly, suggest limited post-mortem disruption and minimal winnowing. Despite this, the high density of material and the lack of stratigraphy within the sediments make the sequence of deposition and disarticulation challenging to determine. When the Dinaledi Chamber was first assessed, approximately 300 fossil fragments were found scattered across the surface of the chamber floor (Fig 1A). The majority of the remaining assemblage came from a single excavation unit, 0.8 m2, excavated in two sessions in 2013 and 2014, to a depth of c20 cm below the surface. This unit lies midway inside the chamber and was targeted for excavation after fossil material was observed eroding through the surface. In total more than 1800 fossil specimens have been recovered from the Dinaledi Chamber.
Fig 1

Fossil distribution.

A) Schematic of the Dinaledi Chamber floor area, showing the distribution of adult and immature material recovered from the surface during the 2013–2014 expedition; B) All immature postcranial specimens recovered from the excavation pit by accession number and depth level.

Fossil distribution.

A) Schematic of the Dinaledi Chamber floor area, showing the distribution of adult and immature material recovered from the surface during the 2013–2014 expedition; B) All immature postcranial specimens recovered from the excavation pit by accession number and depth level. Within the primary excavation unit, material is commingled. Detailed analyses of the taphonomy and distribution of the hominin bone accumulations suggested at least some of the bodies were deposited while still fleshed [11,17,18,19]. Further, the deposition of the remains appears to have occurred over a period of time, within different depth locations of the deposits [11]. The assemblage includes cranial and postcranial remains from both immature and adult individuals. Immature bone is less dense and less calcified than adult bone, and typically is less represented in assemblages than adult material [20,21]. Although two immature hemi-mandibles were recovered, in combination with a total of 32 deciduous teeth, immature cranial elements are extremely rare in the assemblage [10,22]. A mass of small fragments and sediment, removed en bloc in 2014 (U.W. 101–1477) appears to contain multiple fragments of an infant cranium. However, analysis of this thin and fragile material has only recently begun and identifications and descriptions are still underway. While the comingled nature of the assemblage makes it challenging to associate skeletal parts to single individuals, several instances of postcranial elements in direct articulation have been noted [11,17,18]. This information, along with high-resolution data collected from the deposit [18,19], and anatomical assessment of the entire collection have made it possible for us to identify several portions of the skeleton of a single immature individual, which we designate as DH7. Seventy-six postcranial specimens identified as ‘immature’ were recovered from the 2013–2014 Dinaledi excavations (Fig 1, Table 1). The excavation levels are divided into five levels: surface (surface to 40 mm), depth 1 (41–70 mm), depth 2 (71–100 mm), depth 3 (101–130 mm) and depth 4 (131–160 mm). DH7 is based upon in situ articulated elements excavated from the southwest portion of the excavation unit, approximately 41–100 mm below surface (depths 1 and 2). The articulated elements include an almost complete left tibia (U.W. 101–1070), recovered with unfused epiphyses in place (Fig 2); a partial left fibula (U.W. 101–1045), in three pieces, with heavily eroded surface morphology [23]; a left calcaneus (U.W. 101–907) (Fig 3); and a talus and navicular (recovered together as U.W. 101–910) (Fig 4). The three tarsals were originally designated “Foot 2” [24]. The preservation of the complete left tibia is noteworthy as we are familiar with no other specimen in the hominin fossil record that preserves epiphyses in place with this degree of surface detail. An immature right tibia, U.W. 101–996 (Fig 5) appears to be the antimere of the DH7 left tibia, U.W. 101–1070 [23]. This specimen is a composite of three fragments (U.W.101-996, U.W.101-1074 and U.W.101-1077), which were refit in the lab post-excavation, and accessioned to a single specimen number: U.W.101-996. All three fragments were recovered from depth 2 or 3, within 15 cm of the articulated left lower limb DH7 elements.
Table 1

Immature postcranial elements (n = 76) by catalogue number recovered from the 2013–2014 Dinaledi Chamber excavations.

Descriptions in [12,17,23,24,34,35,36].

Catalogue no.Description
1.U.W. 101–014Unsided femur shaft, fragment
2.U.W. 101–031Right humerus, distal and partial shaft
3.U.W. 101–042Unsided tibia, shaft fragment
4.U.W. 101–080Left talus
5.U.W. 101–244Left metatarsal 1
6.U.W. 101–248Left metatarsal 4, partial
7.U.W. 101–259Right radius, proximal and partial shaft
8.U.W. 101–411Left humerus, shaft fragment
9.U.W. 101–439Thoracic vertebra, fragment of neural arch
10.U.W. 101–467Right cuboid (also published as U.W. 101–487)
11.U.W. 101–486Right ilium, fragment
12.U.W. 101–498Left tibia, proximal shaft
13.U.W. 101–517Right metacarpal 3
14.U.W. 101–559Left metacarpal 3
15.U.W. 101–600Left ulna, proximal fragment (possibly immature)
16.U.W.101-634Unsided bone shaft, fragment
17.U.W. 101–703Left radius, proximal
18.U.W. 101–721Right metacarpal 3, distal epiphysis
19.U.W. 101–788Long bone epiphysis, partial
20.U.W. 101–817Left fibula, proximal
21.U.W. 101–863Unsided long bone (either femur or humerus)
22.U.W. 101–888Coccyx (possibly immature)
23.U.W. 101–907Left calcaneus
24.U.W. 101–910Left talus + navicular (two elements under one catalogue number)
25.U.W. 101-938aRight femur, partial shaft
26.U.W. 101-938bRight femur, partial head epiphysis
27.U.W. 101–948Right humerus
28.U.W. 101–964Right ulna, proximal
29.U.W. 101–996Right tibia
30.U.W. 101–997Right navicular
31.U.W. 101–1000Right femur, proximal
32.U.W. 101–1026Metacarpal, head epiphysis
33.U.W. 101–1029Unsided metacarpal shaft
34.U.W. 101–1045Left fibula, in three fragments (a, b, and c) that do not refit
35.U.W. 101–1070Left tibia, with proximal and distal epiphyses
36.U.W. 101–1088Right ischium, partial
37.U.W. 101–1098Right femur epiphysis
38.U.W. 101–1120Left femur, distal
39.U.W. 101–1229Right clavicle, partial shaft
40.U.W. 101–1242Right cuneiform, intermediate
41.U.W. 101–1271Unsided metacarpal, shaft fragment
42.U.W. 101–1293Unsided ulna, midshaft fragment
43.U.W. 101–1340Unsided humerus, shaft
44.U.W. 101–1353Right scapula, lateral spine fragment (possibly immature)
45.U.W. 101–1368Right metatarsal 4
46.U.W. 101–1414Left ischium, partial
47.U.W. 101–1483Right hallucal phalanx epiphysis, proximal
48.U.W. 101–1484Right pedal phalanx, middle
49.U.W. 101–1493Thoracic (upper) vertebra neural arch, fragment
50.U.W. 101–1499Right metatarsal 2 and metatarsal 1 epiphysis (two elements under one catalogue number)
51.U.W. 101–1500Right metatarsal 3
52.U.W. 101–1516Unsided manual phalanx, proximal shaft
53.U.W. 101–1520Fibula, shaft fragment (possibly immature)
54.U.W. 101–1523Right femur shaft, distal
55.U.W. 101–1536Unsided metacarpal, shaft fragment
56.U.W. 101–1543Unsided humeral head epiphysis, partial
57.U.W.101-1552Unsided proximal epiphysis of proximal manual phalanx
58.U.W. 101–1555Left femur, proximal and unfused epiphysis
59.U.W. 101–1617Unsided calcaneus epiphysis
60.U.W. 101–1623Right talus
61.U.W. 101–1633Unsided metacarpal, shaft fragment
62.U.W. 101–1635Unsided manual phalanx, proximal shaft
63.U.W. 101–1636Unsided metacarpal, shaft fragment
64.U.W. 101–1654Unsided metacarpal, shaft distal fragment
65.U.W. 101–1657Unsided pedal phalanx, proximal
66.U.W. 101–1662Right calcaneus, fragmentary
67.U.W. 101–1664Unsided manual phalanx, intermediate distal fragment
68.U.W. 101–1673Cervical vertebra, neural arch fragment
69.U.W. 101–1682Left intermediate cuneiform (possibly immature)
70.U.W. 101–1683Unsided femur epiphysis, distal fragment
71.U.W. 101–1692Cervical (axis) vertebra, odontoid process
72.U.W. 101–1694Right femur epiphysis, distal lateral condyle
73.U.W. 101–1715Unsided metacarpal head epiphysis
74.U.W.101-1754/1755Left ischium, in two parts
Fig 2

Left tibia, nearly complete (U.W. 101–1070).

Note proximal and distal epiphyses affixed with paraloid.

Fig 3

Left calcaneus (U.W. 101–907).

Fig 4

Left talus and navicular (U.W. 101–910).

Fig 5

Right tibia, composite of three elements, missing epiphyses (U.W. 101–996).

Left tibia, nearly complete (U.W. 101–1070).

Note proximal and distal epiphyses affixed with paraloid.

Immature postcranial elements (n = 76) by catalogue number recovered from the 2013–2014 Dinaledi Chamber excavations.

Descriptions in [12,17,23,24,34,35,36]. Considering the number of immature skeletal material recovered from the Dinaledi hominin deposit (Table 1), we set out to test the hypothesis that additional elements of this partial skeleton were present in the sample.

Materials and methods

We assess 70 immature skeletal remains from the 2013–2104 season to identify materials that may belong to the proposed DH7 individual comprised of the six lower limb elements. All fossil analyzed in this study are from the Dinaledi Chamber, accession numbers U.W. 101- (See Table 1). H. naledi original fossils are curated at the Evolutionary Studies Institute, University of the Witwatersrand in Johannesburg, South Africa, and researchers may apply to study them through the Fossil Access Committee by contacting the University Curator for Fossil and Rock Collections. Additionally, 3D surface models and images of DH7 elements are available for public access and download at Morphosource.org (See Table 3). The South African Heritage Resource Agency and Cradle of Humankind UNESCO World Heritage Site Management Authority granted the permits to work on the Rising Star site, excavation permit ID: 952. All necessary permissions were obtained for the described study, which complied with all relevant regulations.
Table 3

List of specimens recovered from the 2013–2014 Dinaledi Chamber excavations that have been identified as immature.

Specimens attributed to DH7 are highlighted in grey. Criteria for determining elements associated with DH7: 1 Duplication of element, 2 Different developmental stage, 3 Size difference, 4 Spatial proximity, 5 Refitting of specimens into single element, 6 Articulation/anatomical position of elements.

Catalogue no.DescriptionReject or accept association w DH7 on criteria
1.U.W. 101–014Unsided femur shaft, fragmentREJECT on #4
2.U.W. 101–031Right humerus, distal and partial shaftREJECT on #1 and #4
3.U.W. 101–042Unsided tibia, shaft fragmentREJECT on #1
4.U.W. 101–080Left talusREJECT on #1 and #4
5.U.W. 101–244Left metatarsal 1REJECT on #2 and #4 [24]
6.U.W. 101–248Left metatarsal 4, partialREJECT on #2 and #4 [24]
7.U.W. 101–259Right radius, proximal and partial shaftREJECT on #4
8.U.W. 101–377; U.W. 101–1014Right hemi-mandible with C, P3, P4, M1 and M2 with canine U.W. 101–1014 refit in labACCEPT on #2, #4 and #5
9.U.W. 101–411Left humerus, shaft fragmentREJECT on #4
10.U.W. 101–439Thoracic vertebra, fragment of neural archIndeterminate; fragment whose developmental stage uncertain; Possible REJECT on #4
11.U.W. 101–467Right cuboid (also published as U.W. 101–487)REJECT on #2, #3 and #4 [24]
12.U.W. 101–486Right ilium, fragmentREJECT on #3 and #4
13.U.W. 101–498Left tibia, proximal shaftREJECT on #1
14.U.W. 101–517Right metacarpal 3REJECT on #2, #3 and #4 [17]
15.U.W. 101–559Left metacarpal 3REJECT on #2, #3 and #4 [17]
16.U.W. 101–600Left ulna, proximal fragment (possibly immature)Indeterminate; fragment whose developmental stage uncertain; Possible REJECT on #4
17.U.W.101-634Unsided bone shaft, fragmentREJECT on #4
18.U.W. 101–703Left radius, proximalREJECT on #2 and #4
19.U.W. 101–721Right metacarpal 3, distal epiphysisREJECT on #2, #3 and #4 [17]
20.U.W. 101–788Long bone epiphysis, partialREJECT on #4
21.U.W. 101–817Left fibula, distalACCEPT on #4 and #5
22.U.W. 101–863Unsided long bone (either femur or humerus)REJECT on #2 and #4
23.U.W. 101–888Coccyx (possibly immature)Indeterminate; fragment whose developmental stage uncertain
24.U.W. 101–907Left calcaneusACCEPT on #4 and #6
25.U.W. 101–910Left talus + navicular (two elements under one catalogue number)ACCEPT on #4 and #6
26.U.W. 101-938aRight femur, partial shaftREJECT on #1 and #4
27.U.W. 101-938bRight femur, partial head epiphysisREJECT on #1 and #4
28.U.W. 101–948Right humerusACCEPT on #2, #3, and #4
29.U.W. 101–964Right ulna, proximalREJECT on #4
30.U.W. 101–996Right tibiaACCEPT on #2, #3 and #4 [23]
31.U.W. 101–997Right navicularREJECT on #2 and #3 [24]
32.U.W. 101–1000Right femur, proximalACCEPT on #2, #3 and #4
33.U.W. 101–1026Metacarpal, head epiphysisREJECT on #2
34.U.W. 101–1029Unsided metacarpal shaftIndeterminate; Possible ACCEPT on #2 and #3 [17]; Possible REJECT on #4
35.U.W. 101–1045Left fibula, in three fragments (a, b, and c) that do not refitACCEPT on #2, #3, #4 and #6
36.U.W. 101–1070Left tibia, with proximal and distal epiphysesACCEPT on #2, #3, #4 and #6 [23]
37.U.W. 101–1088Right ischium, partialACCEPT on #2, #3, and #4
38.U.W. 101–1098Right femur epiphysisACCEPT on #2, #4 and #6
39.U.W. 101–1120Left femur, distalREJECT on #2
40.U.W. 101–1229Right clavicle, partial shaftREJECT on #2 and #3 [34]
41.U.W. 101–1242Right cuneiform, intermediateREJECT on #2, #3 and #4 [24]
42.U.W. 101–1271Unsided metacarpal, shaft fragmentACCEPT on #2 and #3 [17]
43.U.W. 101–1293Unsided ulna, midshaft fragmentIndeterminate; fragment whose developmental stage uncertain
44.U.W. 101–1340Unsided humerus, shaftIndeterminate; fragment whose developmental stage uncertain
45.U.W. 101–1353Right scapula, lateral spine fragment (possibly immature)Indeterminate; fragment whose developmental stage uncertain
46.U.W. 101–1368Right metatarsal 4REJECT on #2, #3 and #4 [24]
47.U.W. 101–1400Left mandibular fragment with Ldc1-LM1 and L12 germREJECT on #2 [13]
48.U.W. 101–1414Left ischium, partialREJECT on #2 [36]
49.U.W.101-1477Multiple fragile fragments, including cranial and vertebral bits, removed en blocREJECT on #2 and #3
50.U.W. 101–1483Right hallucal phalanx epiphysis, proximalREJECT on #2, #3 and #4 [24]
51.U.W. 101–1484Right pedal phalanx, middleREJECT on #2, #3 and #4 [24]
52.U.W. 101–1493Thoracic (upper) vertebra neural arch, fragmentIndeterminate; fragment whose developmental stage uncertain; Possible ACCEPT on #4
53.U.W. 101–1499Right metatarsal 2 and metatarsal 1 epiphysis (two elements under one catalogue number)REJECT on #2, #3 and #4 [24]
54.U.W. 101–1500Right metatarsal 3REJECT on #2, #3 and #4 [24]
55.U.W. 101–1516Unsided manual phalanx, proximal shaftIndeterminate; fragment heavily eroded whose developmental stage uncertain; Possible ACCEPT on #4
56.U.W. 101–1520Fibula, shaft fragment (possibly immature)Indeterminate; fragment whose developmental stage uncertain; Possible REJECT on #4 [23]
57.U.W. 101–1523Right femur shaft, distalREJECT on #3 and #4 [23]
58.U.W. 101–1536Unsided metacarpal, shaft fragmentACCEPT on #2, #3 and #4 [17]
59.U.W. 101–1543Unsided humeral head epiphysis, partialREJECT on #2
60.U.W.101-1552Unsided proximal epiphysis of proximal manual phalanxREJECT on #3 and #4 [17]
61.U.W. 101–1555Left femur, proximal and unfused epiphysisIndeterminate; heavily eroded [23]; Possible REJECT on #4
62.U.W. 101–1617Unsided calcaneus epiphysisIndeterminate; fragment whose provenience uncertain; Possible REJECT on #3
63.U.W. 101–1623Right talusREJECT on #2, #3 and #4 [24]
64.U.W. 101–1633Unsided metacarpal, shaft fragmentACCEPT on #2, #3 and #4 [17]
65.U.W. 101–1635Unsided manual phalanx, proximal shaftACCEPT on #2, #3 and #4 [17]
66.U.W. 101–1636Unsided metacarpal, shaft fragmentACCEPT on #2, #3 and #4 [17]
67.U.W. 101–1654Unsided metacarpal, shaft distal fragmentIndeterminate; Possible ACCEPT on #2 and #3 [17]; Possible REJECT on #4
68.U.W. 101–1657Unsided pedal phalanx, proximalIndeterminate; Possible REJECT on #2, #3 and #4 [24]
69.U.W. 101–1662Right calcaneus, fragmentaryREJECT on #2, #3 and #4 [24]
70.U.W. 101–1664Unsided manual phalanx, intermediate distal fragmentACCEPT on #2, #3 and #4 [17]
71.U.W. 101–1673Cervical vertebra, neural arch fragmentIndeterminate; fragment whose developmental stage uncertain
72.U.W. 101–1682Left intermediate cuneiform (possibly immature)Indeterminate; developmental stage uncertain
73.U.W. 101–1683Unsided femur epiphysis, distal fragmentIndeterminate; fragment
74.U.W. 101–1692Cervical (axis) vertebra, odontoid processREJECT on #2 and #3 [35]
75.U.W. 101–1694Right femur epiphysis, distal lateral condyleIndeterminate; fragment eroded; Possible REJECT on #2 and #4
76.U.W. 101–1715Unsided metacarpal head epiphysisREJECT on #2
77.U.W.101-1754/1755Left ischium, in two partsREJECT #4, #5 and #6
A minimum number of individuals (MNI) was previously assessed from the 2013–2104 season based on dental remains: nine immature individuals, and six adult individuals [10,13] (Table 2). Six of the dental individuals are either ‘Infants’ (deciduous dentition only) or ‘Early Juveniles’ (with first molars erupted). Only a single dental specimen represents a ‘Late Juvenile’ with second molars erupted [13] (Table 2). This ‘Late Juvenile’ is represented by a right mandibular fragment, U.W. 101–377, preserving permanent teeth C, P3, P4, M1 and M2 (canine U.W. 101–1014 refit in lab) [10,11,13,20] (Fig 6). The partial mandible was recovered from depth 1 in the excavation unit.
Table 2

Homo naledi age classes for 13 individuals represented in 2013–2014 excavation season, based on dentition.

Two additional individuals are present based on MNI, but only approximate age can be determined: One is an adult, and one is an immature [13].

Dentition PresentAge ClassNumber in assemblage
Deciduous dentition onlyInfant3
First molar(s)Early juvenile3
Second molar(s)Late juvenile1
Third molar(s)—unworn / partially eruptedSub-Adult1
All permanent teeth fully erupted, little to moderate wearYoung Adult4
All permanent teeth fully erupted, heavy wearOld Adult1
Fig 6

U.W. 101–377 right hemi-mandible.

Right hemi-mandible with permanent teeth C, P3, P4, M1 and M2; canine U.W. 101–1014 refit in lab.

U.W. 101–377 right hemi-mandible.

Right hemi-mandible with permanent teeth C, P3, P4, M1 and M2; canine U.W. 101–1014 refit in lab.

Homo naledi age classes for 13 individuals represented in 2013–2014 excavation season, based on dentition.

Two additional individuals are present based on MNI, but only approximate age can be determined: One is an adult, and one is an immature [13]. The DH7 associated lower limb represents a ‘Late Juvenile’ in skeletal maturation stage, with unfused but well-developed epiphyses of the hip, knee and ankle, a maturational skeletal pattern that is consistent across apes and hominins [13,25-29]. Criteria for including or excluding elements from association with DH7 include: duplication of element; developmental stage; size difference; spatial proximity (depth and span); refitting of specimens into a single element; and articulation/anatomical position of elements (Table 3). Skeletal maturation continuity was assessed using established standards from the literature [30-33]; cf [5]. Evaluations were made using the original fossils, original excavation notes and photographs, and published descriptions of H. naledi anatomy [17,23,24,34,35,36]. The vertical and horizontal context of immature material within the excavation unit was also used to help identify potentially associated elements [19]. If depth location was not available from the previously collected 3D data [18,19], depth was estimated based on excavation photographs and comparisons with known-depth specimens.

List of specimens recovered from the 2013–2014 Dinaledi Chamber excavations that have been identified as immature.

Specimens attributed to DH7 are highlighted in grey. Criteria for determining elements associated with DH7: 1 Duplication of element, 2 Different developmental stage, 3 Size difference, 4 Spatial proximity, 5 Refitting of specimens into single element, 6 Articulation/anatomical position of elements. In this commingled sample we set a very high evidentiary standard to accept the association of different elements. Anatomical in situ articulation of the left lower limb elements provides certain evidence that these elements represent a single individual, deposited with soft tissue still intact. The U.W. 101–996 tibia meets this standard on the evidence of its mirror-image anatomy to U.W. 101–1070 [23], its identical state of epiphyseal development, and its very close spatial and depth position to the articulated left lower limb elements of DH7. The discovery that all fragments of two antimere elements are very near each other may suggest a low degree of disaggregation of skeletal elements in this part of the deposit. The evidence for skeletal association here meets the standards linking immature partial skeletons at other hominin sites with commingled individuals [1,4,8,9]. El Sidrón J1 is an Early Juvenile partial skeleton (H. neanderthalensis) recovered mostly from a 1 m2 unit, together with multiple elements from at least one younger and one older immature individual. The consistent developmental stage and some direct articulations support the interpretation that the J1 material represents a single individual [1]. The MH1 immature partial skeleton from Malapa also includes some elements in direct anatomical articulation [4], and of consistent developmental stage, although one adult partial skeleton and another immature individual are known to be present in this assemblage. A sub-adult partial skeleton from Dmanisi, Georgia is evidenced based upon stratigraphic association, with all elements found within a 1 m stratum across 7 m2, along with developmental consistency and lack of element duplication [8,9]. As in the Dinaledi example, the recovery of more skeletal material from any of these active sites may necessitate revisions to the original hypothesis of association. The 2013–2014 Dinaledi excavations involved a single 0.8 m2 unit, in addition to a small amount of material collected from the chamber surface. While the surface area of the chamber consists of approximately 20 m2, the depth of the sediments within is currently unknown. Consequently, we cannot predict what other remains of this individual may yet be recovered. We further caution that many elements in the collection are too fragmentary to accurately assess developmental stage.

Results

We identified additional skeletal specimens that are developmentally consistent in maturity indicators with the remains of DH7, recovered within 2–20 cm of the articulated lower limb (Figs 7 and 8; Table 4). Consistent with the dental evidence from the Dinaledi Chamber of the ‘Late Juvenile’ age class, postcranial elements that demonstrate a ‘Late Juvenile’ stage of maturation are quite rare within the sample.
Fig 7

Distribution and location map of the elements associated with DH7.

Fig 8

DH7 partial skeleton.

Table 4

Elements associated with immature juvenile skeleton DH7.

Catalogue no.Description
U.W. 101–377; U.W. 101–1014Right hemi-mandible with C, P3, P4, M1 and M2 with canine U.W. 101–1014 refit in lab [10,13,22].
U.W. 101–817Left fibula, distal element, broken and excavated nearby but separately from fibula shaft U.W.101-1045. The specimen has metaphyseal surface along the articular areas [23].
U.W. 101–907Left calcaneus. The specimen retains a small region of metaphyseal surface on the posterior, medial aspect. It is small in size compared to other adult calcaneal bones in the assemblage [24].
U.W. 101–910Left talus + navicular (two elements under one catalogue number). Both elements are small in size compared to other adult tarsal bones in the Dinaledi assemblage, and “lack the defined borders” of adult tarsals [24, 27].
U.W. 101–948Right humerus comprised of two shaft elements conjoined in the lab. Both the proximal and distal ends are less well preserved. Proximally the humeral head has exposed metaphyseal surface indicating no fusion of an epiphysis. There is possibly a minute metaphyseal surface on the most lateral distal olecranon region [34].
U.W. 101–996Right tibia, missing the epiphyses and with the ends of the shaft somewhat damaged. Antimere U.W.101-1070 [23].
U.W. 101–1000Right femur, proximal. The proximal femur is not well preserved. There are splintered fragments missing from the shaft, and the greater and lesser trochanters are not preserved [23].
U.W. 101–1045Left fibula composed of three fragments that do not refit. The fragments are eroded, and moderate damage prevents characterization of surface features [23]. Immature based on size [23] and in situ association with immature tibia U.W.101-1070.
U.W. 101–1070Left tibia, with proximal and distal epiphyses. The proximal epiphysis of this specimen appears almost fully formed in size and shape, and is well-fitted to the diaphysis, although unfused. The distal epiphysis appears less formed in adult morphology, but is also less well preserved [23].
U.W. 101–1088Right ischium, partial. The posterior acetabular epiphysis is fully fused to form a continuous lunate surface. The acetabular surfaces and the ischial tuberosity epiphysis are unfused, evident by beveling and rough surfaces. The pubic ramus fusion information is not preserved [36].
U.W. 101–1098Right femur epiphysis, proximal. The partial femoral head is unfused but mature in size and appearance, with a well-formed fovea, a smooth surface, and an angulated margin with a “beak-like” projection similar to pre-adolescent human head epiphyses [23].
U.W. 101–1271Unsided metacarpal, shaft fragment. Metacarpal shaft fragment is pre-adult in size, but age-consistent with the other hand materials combined into “Hand 5” [15]. Shaft exhibit defined adult morphology of a distinctive palmar curvature.
U.W. 101–1536Unsided metacarpal, shaft fragment only [17]. Shaft fragment is pre-adult in size, but exhibits defined features of metacarpal, with palmar curvature and a slight ridging on the palmar aspect.
U.W. 101–1633Unsided metacarpal, shaft fragment. Metacarpal shaft fragment is pre-adult in size, but exhibit defined morphology indicative of older juvenile [17].
U.W. 101–1635Unsided manual proximal phalanx, distal shaft. Distinctive in shape with distal bicondylar ridging, although bone weathered. Missing proximal end of bone. Shaft is pre-adult in size [17].
U.W. 101–1636Unsided metacarpal, shaft fragment. Metacarpal shaft fragment is pre-adult in size, but exhibits distinctive palmar curvature [17].
U.W. 101–1664Unsided manual phalanx, intermediate distal fragment. Manual phalangeal shaft fragment is pre-adult in size, but consistent developmentally with other associated hand bones [17].
A right proximal femur fragment (U.W. 101–1000) was recovered from depth 1 (Fig 9A). The unfused head of this proximal femur fragment refits a right femoral head epiphysis (U.W. 101–1098), located at depth 2 (Fig 9B). A nearly complete right ischium (U.W. 101–1088) was found at the distal end of the articulated lower left limb in the excavation unit, at depth 2 (Fig 10). The distal segment of the left immature fibula (U.W. 101–817) was found adjacent to the articulated in situ ankle, at depth 2 (Figs 11 and 12). Two right humeral shaft pieces were found adjacent to the left tibia, and refit in the lab for a nearly complete humerus (U.W. 101–948) (Fig 13).
Fig 9

Right femur.

a) Proximal fragment with metaphyseal surface (U.W. 101–1000); b) unfused femoral head epiphysis (U.W. 101–1098).

Fig 10

Right ischium (U.W. 101–1088).

Fig 11

Excavation photograph.

Image showing location of elements of right and left lower limb: U.W. 101–907, U.W. 101–910, U.W. 101–1000, U.W. 101–1070, U.W. 101–1045 and U.W. 101–817.

Fig 12

Left fibula, in 4 elements (U.W. 101–1045 a, b, c and U.W. 101–817).

Fig 13

Right humerus, nearly complete.

Composite of two elements, missing epiphyses (U.W. 101–948).

Right femur.

a) Proximal fragment with metaphyseal surface (U.W. 101–1000); b) unfused femoral head epiphysis (U.W. 101–1098).

Excavation photograph.

Image showing location of elements of right and left lower limb: U.W. 101–907, U.W. 101–910, U.W. 101–1000, U.W. 101–1070, U.W. 101–1045 and U.W. 101–817.

Right humerus, nearly complete.

Composite of two elements, missing epiphyses (U.W. 101–948). Additional fragmentary hand bones were found near the articulated lower limb and hemi-mandible, and have provisionally been associated with DH7. Despite being small in size, these hand bones are consistent with each other in their developmental morphology and age indicators [17]. Two unsided immature metacarpal shaft fragments (U.W. 101–1633 and U.W. 101–1636), and two immature fragments from a proximal and intermediate phalanx (U.W. 101–1635 and U.W. 101–1664), provisionally attributed to “Hand 5” [17], were recovered en bloc at depth 2, and processed together in the lab (Fig 14A–14D). Two additional metacarpal shafts (U.W. 101–1536 and U.W. 101–1271), also attributed to “Hand 5”, were recovered from depth 2, and in spatial proximity to the partial mandible U.W. 101–377 (Fig 14E and 14F).
Fig 14

Hand remains found en bloc: a) unsided metacarpal shaft U.W. 101–1633; b) unsided metacarpal fragment; c) unsided proximal phalanx, distal shaft U.W. 101–1635; d) unsided intermediate phalanx fragement, U.W. 101–1664; and two additional age-consistent hand bones: e) metacarpal shaft fragment, unsided U.W. 101–1271; and f) metacarpal shaft fragment, unsided U.W. 101–1536.

Hand remains found en bloc: a) unsided metacarpal shaft U.W. 101–1633; b) unsided metacarpal fragment; c) unsided proximal phalanx, distal shaft U.W. 101–1635; d) unsided intermediate phalanx fragement, U.W. 101–1664; and two additional age-consistent hand bones: e) metacarpal shaft fragment, unsided U.W. 101–1271; and f) metacarpal shaft fragment, unsided U.W. 101–1536. Although dental MNI indicated only one ‘Late Juvenile’ [10,13], there is postcranial evidence of a second ‘Late Juvenile’ individual in the Dinaledi Chamber deposit [37]. This second ‘Late Juvenile’ is present in the northeastern portion of the excavation pit at depth 3, is not as complete as DH7, and duplicates elements of DH7. The material includes a right femur refit from four pieces (U.W. 101-938a), an epiphyseal head (U.W. 101-938b) and two right pelvic fragments (U.W. 101–1754 and U.W. 101–1755) (Fig 15). This partial lower limb orients towards the periphery of the unit, and the more fragmentary state may be a result of the position of the bones in the commingled pit. Bodies in the more compacted center of commingled deposits from forensic and archaeological mass graves undergo differential taphonomic factors, and may result in differential preservation from those on the outer edges [cf. 38].
Fig 15

Right femur (U.W. 101-938a, b) and pelvic fragments (U.W. 101–1754 and U.W. 101–1755). a) in situ U.W. 101-938a, b and U.W. 101–1754; b) nearly complete femur from four refit pieces; c) articulation of U.W. 101-938b with U.W. 101–1754 and U.W. 101–1755.

Right femur (U.W. 101-938a, b) and pelvic fragments (U.W. 101–1754 and U.W. 101–1755). a) in situ U.W. 101-938a, b and U.W. 101–1754; b) nearly complete femur from four refit pieces; c) articulation of U.W. 101-938b with U.W. 101–1754 and U.W. 101–1755. Considering the entire fossil collection, we hypothesize that the ‘Late Juvenile’ material from the southwestern portion, and from depths 1–3 of the excavation pit, derive from the same individual as the associated postcranial material. We therefore provisionally attribute all this material to DH7. However, we note that the abundance of material in the present collection may still represent only a small fraction of the total amount of hominin skeletal material in the Dinaledi Chamber as a whole.

Discussion

The conditions inside the Dinaledi Chamber have yielded an unprecedented number of Homo naledi fossils. In this case, the number of immature remains in the Dinaledi assemblage offers the possibility to expand our knowledge of stages of maturational processes in H. naledi. The identification of a partial older juvenile skeleton of H. naledi substantially adds to the database of associated immature partial skeletons in the human evolutionary fossil record. The skeletal maturation of DH7 places it near the same maturational stage as partial skeletons of two other species, the MH1 holotype of Au. sediba, dated to 1.98 million years old [4,5,39], and the KNM-WT 15000 skeleton attributed to H. erectus, dated to 1.6 million years old [6,40-43]. All three partial skeletons share a combination of unfused long bone epiphyses and pelvic elements, indicating that growth was still occurring at the shoulder, hip, knee and ankle regions. Dentally, all three individuals lack erupted third molars, although the stage of premolar and canine eruptions varies across specimens. The age at death of KNM-WT 15000 is estimated between 8.3 to 8.8 years based on dental microhistology [42]; MH1 has been estimated to have been between 9–11 years old at death [5]. The DH7 partial skeleton (Fig 4) from the Late Middle Pleistocene contributes important new data to the field of hominin ontogeny. As designated, DH7 is consistent in skeletal maturity with MH1 and KNM-WT 15000, both of which exhibit an ape-like (non-human) maturational timing [5,29,41,42]. However, other body systems complicate the characterization of somatic maturity in DH7. Dentally, H. naledi appears to have a pattern of dental eruption which suggests an affinity with H. sapiens, with premolars fully emerged by the time the second molars are fully erupted; however, the pattern of dental root formation is more ape-like [44]. H. naledi has a unique dental pattern of surface enamel deposition unlike any other hominin, and unlike humans [45]. The mosaic of brain size and body size characters in H. naledi further complicates interpretations of the maturation pattern. At 480-610cc, H. naledi has an intermediate brain size between Au. sediba and H. erectus [12,46]. H. naledi has a stature more similar to Au. sediba, estimated at 143.5 cm for adults [5,46]. If Au. sediba, H. erectus and H. naledi shared a similar mode of maturity, this would suggest an age at death for DH7 between ~8–11 years old. The phylogenetic arrangement of these three species relative to modern humans is uncertain [47,48]. The contrast in brain size among them is striking, raising the possibility of testing whether the maturation pattern in these immature skeletons relates to brain development. The maturational consistency between MH1 and KNM-WT 15000 has been used to support the hypothesis that Early Pleistocene hominins had not experienced the temporal shift in ontogeny that characterizes H. sapiens, irrespective of their brain or body size [5,29,43,49,50]. It remains possible that H. naledi had a slower maturation schedule than earlier hominins, similar to modern humans and Neanderthals. The species did exist contemporaneously with both early modern humans and Neanderthals in the Late Middle Pleistocene, and some evidence suggests that H. naledi may be a phylogenetic sister to these large-brained forms [47]. If so, the DH7 individual might be older than MH1 or KNM-WT 15000, ~11–15 years based on human maturational standards (Table 5). An intermediate pattern of somatic maturity is also possible.
Table 5

Estimated age in years of DH7 based on regions with skeletal maturity indicators, compared to Homo sapiens.

DH7: Bone elements (with catalogue numbers) and maturity indicators. See also [17,23,24,34,35,36].Homo sapiens age
Right humerus, nearly complete (U.W. 101–948)
Description:
A right humerus, no fusion of the proximal epiphysis. There is possibly a minute metaphyseal surface on the most lateral distal olecranon region.≥11–13 female
≥12–15 male
H. sapiens: The humeral head unites as early as 13 in females and 15 in males. The possibility of a metaphyseal surface on the distal region, in conjunction with the overall size, would suggest a younger age of 11–12 years [32].
Right proximal femur and conjoining femoral head (U.W.101-1000; U.W. 101–1098)
Description:
A proximal femur and partial femoral head that is unfused but mature in size and appearance.≥12–13 female/male
H. sapiens: The femoral head unites between 14–19 years in modern humans, and although unfused, the mature appearance of the U.W. 101–1000 specimen suggests an upper age limit [32].
Right ischium (U.W.101-1088)
Description:
The posterior acetabular epiphysis of this specimen is fully fused to form a continuous lunate surface. The acetabular surfaces and the ischial tuberosity epiphysis are unfused.11–12 female/male
H. sapiens: Union of the posterior acetabular epiphysis begins between 10–11 years. The acetabula in modern humans begin fusing between 11–15 years in girls, and 14–17 years in boys. The ischial tuberosity initiates fusion between 13–16 years, leading to an estimated age at death of <13 years for U.W.101-1088 [36].
Right tibial shaft and left tibia with epiphyses (U.W.101-996; U.W.101-1070)
Description:
For U.W.101-1070, the proximal epiphysis appears almost fully formed in size and shape, and is well-fitted to the diaphysis, although unfused. The distal epiphysis appears less well formed, but is also less well preserved.≤11–14 female
≤14–15 male
H. sapiens: The proximal tibial epiphysis initiates fusion as early as 13 years in females and 15 years in males. However, reported timings for the beginning of distal epiphysis fusion vary from as early as 11 years in girls and 14 years in boys [31], to as late as 14 years in girls and 15 years in boys [33].
Left calcaneus (U.W.101-907)
Description:
This specimen retains a small region of metaphyseal surface on the posterior, medial aspect.<12 female
<15 male
H. sapiens: Fusion of the calcaneal epiphysis is advanced by 12 years in girls and 15 in boys. An unfused calcaneus, without the epiphysis for confirmation, is estimated to be a Stage IX or X [30] or roughly <12 years for females and <15 years for males.
The late Middle Pleistocene age of H. naledi places the species as a possible contemporary in Southern Africa with our own species, H. sapiens (cf. [51]). H. naledi, with its unusual combination of primitive and derived traits, and its relatively recent existence, may shed light on the evolutionary adaptations that drove changes in the tempo of maturity, and possibly life history, in other late members of the Homo genus. The unprecedented assemblage of immature remains, plus the rare juvenile H. naledi partial skeleton, provide new opportunities to further the field of hominin ontogeny, and to explore the factors that shaped the evolution of extended maturity and life history in our own species.
  29 in total

1.  The environmental contexts of early human occupation of Georgia (Transcaucasia).

Authors:  L Gabunia; A Vekua; D Lordkipanidze
Journal:  J Hum Evol       Date:  2000-06       Impact factor: 3.895

2.  Postcranial evidence from early Homo from Dmanisi, Georgia.

Authors:  David Lordkipanidze; Tea Jashashvili; Abesalom Vekua; Marcia S Ponce de León; Christoph P E Zollikofer; G Philip Rightmire; Herman Pontzer; Reid Ferring; Oriol Oms; Martha Tappen; Maia Bukhsianidze; Jordi Agusti; Ralf Kahlke; Gocha Kiladze; Bienvenido Martinez-Navarro; Alexander Mouskhelishvili; Medea Nioradze; Lorenzo Rook
Journal:  Nature       Date:  2007-09-20       Impact factor: 49.962

3.  Australopithecus sediba at 1.977 Ma and implications for the origins of the genus Homo.

Authors:  Robyn Pickering; Paul H G M Dirks; Zubair Jinnah; Darryl J de Ruiter; Steven E Churchil; Andy I R Herries; Jon D Woodhead; John C Hellstrom; Lee R Berger
Journal:  Science       Date:  2011-09-08       Impact factor: 47.728

4.  The vertebrae and ribs of Homo naledi.

Authors:  Scott A Williams; Daniel García-Martínez; Markus Bastir; Marc R Meyer; Shahed Nalla; John Hawks; Peter Schmid; Steven E Churchill; Lee R Berger
Journal:  J Hum Evol       Date:  2017-01-13       Impact factor: 3.895

5.  Australopithecus afarensis scapular ontogeny, function, and the role of climbing in human evolution.

Authors:  David J Green; Zeresenay Alemseged
Journal:  Science       Date:  2012-10-26       Impact factor: 47.728

6.  Homo naledi pelvic remains from the Dinaledi Chamber, South Africa.

Authors:  Caroline VanSickle; Zachary Cofran; Daniel García-Martínez; Scott A Williams; Steven E Churchill; Lee R Berger; John Hawks
Journal:  J Hum Evol       Date:  2017-11-21       Impact factor: 3.895

7.  Body size, brain size, and sexual dimorphism in Homo naledi from the Dinaledi Chamber.

Authors:  Heather M Garvin; Marina C Elliott; Lucas K Delezene; John Hawks; Steven E Churchill; Lee R Berger; Trenton W Holliday
Journal:  J Hum Evol       Date:  2017-08-04       Impact factor: 3.895

8.  The postcranial skeletal maturation of Australopithecus sediba.

Authors:  Noel Cameron; Barry Bogin; Debra Bolter; Lee R Berger
Journal:  Am J Phys Anthropol       Date:  2017-05-02       Impact factor: 2.868

9.  The upper limb of Homo naledi.

Authors:  Elen M Feuerriegel; David J Green; Christopher S Walker; Peter Schmid; John Hawks; Lee R Berger; Steven E Churchill
Journal:  J Hum Evol       Date:  2016-11-10       Impact factor: 3.895

10.  Geological and taphonomic context for the new hominin species Homo naledi from the Dinaledi Chamber, South Africa.

Authors:  Paul H G M Dirks; Lee R Berger; Eric M Roberts; Jan D Kramers; John Hawks; Patrick S Randolph-Quinney; Marina Elliott; Charles M Musiba; Steven E Churchill; Darryl J de Ruiter; Peter Schmid; Lucinda R Backwell; Georgy A Belyanin; Pedro Boshoff; K Lindsay Hunter; Elen M Feuerriegel; Alia Gurtov; James du G Harrison; Rick Hunter; Ashley Kruger; Hannah Morris; Tebogo V Makhubela; Becca Peixotto; Steven Tucker
Journal:  Elife       Date:  2015-09-10       Impact factor: 8.140

View more
  1 in total

1.  Growth and development of the third permanent molar in Paranthropus robustus from Swartkrans, South Africa.

Authors:  Christopher Dean; Clément Zanolli; Adeline Le Cabec; Mirriam Tawane; Jan Garrevoet; Arnaud Mazurier; Roberto Macchiarelli
Journal:  Sci Rep       Date:  2020-11-04       Impact factor: 4.379

  1 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.