| Literature DB >> 21125022 |
Robert W Meredith, Miguel A Mendoza, Karen K Roberts, Michael Westerman, Mark S Springer.
Abstract
PSEUDOCHEIRIDAE (MARSUPIALIA: Diprotodontia) is a family of endemic Australasian arboreal folivores, more commonly known as ringtail possums. Seventeen extant species are grouped into six genera (Pseudocheirus, Pseudochirulus, Hemibelideus, Petauroides, Pseudochirops, Petropseudes). Pseudochirops and Pseudochirulus are the only genera with representatives on New Guinea and surrounding western islands. Here, we examine phylogenetic relationships among 13 of the 17 extant pseudocheirid species based on protein-coding portions of the ApoB, BRCA1, ENAM, IRBP, Rag1, and vWF genes. Maximum parsimony, maximum likelihood, and Bayesian methods were used to estimate phylogenetic relationships. Two different relaxed molecular clock methods were used to estimate divergence times. Bayesian and maximum parsimony methods were used to reconstruct ancestral character states for geographic provenance and maximum elevation occupied. We find robust support for the monophyly of Pseudocheirinae (Pseudochirulus + Pseudocheirus), Hemibelidinae (Hemibelideus + Petauroides), and Pseudochiropsinae (Pseudochirops + Petropseudes), respectively, and for an association of Pseudocheirinae and Hemibelidinae to the exclusion of Pseudochiropsinae. Within Pseudochiropsinae, Petropseudes grouped more closely with the New Guinean Pseudochirops spp. than with the Australian Pseudochirops archeri, rendering Pseudochirops paraphyletic. New Guinean species belonging to Pseudochirops are monophyletic, as are New Guinean species belonging to Pseudochirulus. Molecular dates and ancestral reconstructions of geographic provenance combine to suggest that the ancestors of extant New Guinean Pseudochirops spp. and Pseudochirulus spp. dispersed from Australia to New Guinea ∼12.1-6.5 Ma (Pseudochirops) and ∼6.0-2.4 Ma (Pseudochirulus). Ancestral state reconstructions support the hypothesis that occupation of high elevations (>3000 m) is a derived feature that evolved on the terminal branch leading to Pseudochirops cupreus, and either evolved in the ancestor of Pseudochirulus forbesi, Pseudochirulus mayeri, and Pseudochirulus caroli, with subsequent loss in P. caroli, or evolved independently in P. mayeri and P. forbesi. Divergence times within the New Guinean Pseudochirops clade are generally coincident with the uplift of the central cordillera and other highlands. Diversification within New Guinean Pseudochirulus occurred in the Plio-Pleistocene after the establishment of the Central Range and other highlands. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1007/s10914-010-9129-7) contains supplementary material, which is available to authorized users.Entities:
Year: 2010 PMID: 21125022 PMCID: PMC2987229 DOI: 10.1007/s10914-010-9129-7
Source DB: PubMed Journal: J Mamm Evol ISSN: 1064-7554 Impact factor: 2.611
Fig. 1Distribution of collecting localities for New Guinean pseudocheirids (Flannery 1995a, b) plotted on a generalized topographic map (modified from Flannery 1995b).
Geographic range, habitat, diet, and altitudinal for Australian and New Guinean pseudocheirids included in this study (data from Tate 1945; Thomson and Owen 1964; Flannery 1995b; Meynecke 2004; Helgen 2007a, b)
| Geographic Range | Habitat | Diet | Altitude (meters) | |
|---|---|---|---|---|
|
| Parts of Queensland, New South Wales, Victoria, South Australia, and Tasmania | Scrub, sclerophyll forest, rainforest | Mostly leaves, but also flowers and fruits (dietary preferences vary geographically) | Sea level—1500 |
|
| Queensland (between Ingham and Cairns) | Tropical rainforest; occasionally tall open forests of Flooded Gum that fringe rainforests | Mostly leaves | >350 m |
|
| Widespread throughout lowland New Guinea | Lowland forests | Mosses, ferns, lichens, leaves | Sea level—1700 |
|
| Irian Jaya (Weyland Range, Noord River basin, Baliem Valley, Maokop Range) | Noord River basin, Weyland Range, Baliem Valley, | No information | 0-2200 |
|
| New Guinean central cordillera | Moss forests | Leaves, mosses, ferns, lichens, fungus, and pollen | 1200–4200 (most abundant > 2000) |
|
| Eastern half of the New Guinean central cordillera, Vogelkop Peninsula North Coast Ranges, Huon Peninsula | Montane forests | Primalily leaves, includes those of | 450–3800 |
|
| Queensland (between Ingham and Cairns, Mount Carbine Tableland) | Tropical rainforest | Mostly leaves; also certain flowers and the outer covering of the yellow walnut | >450 |
|
| Eastern Australia (Queensland, New South Wales, Victoria) | Sclerophyll forest | Almost exclusively eucalypt leaves | |
|
| Western Australia (northeastern Kimberley region), Northern Territory (Katherine and Roper Rivers region, Groote Eylandt), Queensland (northwestern region) | Rocky outcrops | Flowers, fruits, leaves | <1000 |
|
| Queensland (between Paluma and the Mount Windsor Tableland, west of Mossman) | Tropical rainforest | Almost exclusively leaves, mainly from several species of fig | 300–1200 |
|
| Huon Peninsula, New Guinean central cordillera | Lower montane rainforest | Primarily leaves | 900–2900 (most common at 1800–2200) |
|
| New Guinean central cordillera; Wissel Lakes Region | Rainforest; scrub and herbfield at 3700 m in Prinz Wilhelm V Range in Irian Jaya | Primarily leaves | 1350–4000 (most common above 2500) |
|
| New Guinea (Arfak Mountains, Weyland Range, North Coast Ranges), Japen Island | Lower montane rainforest | Known stomach contents include leaves, fruits, and buds of | 300–2500 |
GenBank accession numbers and taxonomy followed in this study. New sequences are indicated with asterisks
| TAXON | ApoB | BRCA1 | IRBP | Rag1 | vWF | ENAM |
|---|---|---|---|---|---|---|
| Petauroidea | ||||||
| Petauridae | ||||||
|
| AY243433 | EU160443 | AY243441 | AY243400 | AY243417 | GU199289* |
|
| FJ623979 | FJ623999 | FJ624017 | FJ624041 | FJ624065 | GU199290* |
|
| GU199269* | GU199275* | GU199303* | GU199309* | GU199315* | GU199288* |
|
| FJ623975 | EF025766 | FJ624013 | FJ624037 | FJ624061 | GU199285* |
|
| FJ623972 | FJ623994 | FJ624010 | FJ624034 | FJ624058 | GU199282* |
|
| FJ623973 | FJ623995 | FJ624011 | FJ624035 | FJ624059 | GU199283* |
| Pseudocheiridae | ||||||
|
| FJ623976 | FJ623997 | FJ624014 | FJ624038 | FJ624062 | GU199286* |
|
| FJ623978 | AY243455 | FJ624016 | FJ624040 | FJ624064 | GU199287* |
|
| FJ623982 | FJ624001 | FJ624020 | FJ624044 | FJ624068 | GU199292* |
|
| FJ623983 | AY243448 | FJ624022 | FJ624046 | FJ624069 | GU199300* |
|
| FJ623984 | FJ624003 | FJ624023 | FJ624047 | FJ624070 | GU199301* |
|
| GU199270* | GU199276* | GU199304* | GU199310* | GU199316* | GU199297* |
|
| GU199271* | GU199277* | GU199305* | GU199311* | GU199317* | GU199298* |
|
| GU199272* | GU199278* | GU199306* | GU199312* | GU199318* | GU199299* |
|
| FJ623980 | FJ624000 | FJ624018 | FJ624042 | FJ624066 | GU199291* |
|
| FJ603114 | FJ603123 | AF025387 | AY243392 | FJ603135 | GU199296* |
|
| AY243425 | FJ624002 | FJ624021 | FJ624045 | AY243409 | GU199294* |
|
| GU199273* | GU199279* | GU199307* | GU199313* | GU199319* | GU199293* |
|
| GU199274* | GU199280* | GU199308* | GU199314* | GU199320* | GU199295* |
| Acrobatidae | ||||||
|
| FJ603115 | FJ603119 | FJ603126 | FJ603131 | FJ603136 | GU199281* |
|
| FJ623974 | FJ623996 | FJ624012 | FJ624036 | FJ624060 | GU199284* |
| Tarsipedidae | ||||||
|
| FJ603116 | FJ603124 | FJ603128 | FJ603132 | FJ603137 | GU199302* |
Fig. 2Bayesian tree obtained from the gene partitioned Bayesian analysis. Values above and below branches correspond to the mean Bayesian posterior probabilities (expressed as percentages) based on the two simultaneous runs, and ML bootstrap support percentages for the RAxML gene-partitioned analysis, respectively.
Fig. 3Maximum likelihood phylogram obtained from the RAxML gene partitioned analysis (GTR + I + Γ model of sequence evolution) using protein-coding portions of ApoB, BRCA1, ENAM, IRBP, Rag1, and vWF.
Fig. 4Visual representation of the methodology used to determine fossil constraints employed in this study. Fossil/Faunal zones used to determine the oldest representative of a given lineage are given in Table 3. Ages of epoch boundaries are based on Gradstein et al. (2004). Plio. = Pliocene; Pl. = Pleistocene.
Fig. 5Timeline in millions of years before present for pseudocheirid evolution based on the BEAST partitioned analysis. Grey bars indicate 95% highest posterior densities. Numbers within open circled nodes indicate calibrated nodes. Plio. = Pliocene; Pl. = Pleistocene.
Fossil localities that were utilized in determining minimum and maximum fossil constraints
| Fossil/Faunal Zone Locality | Reference(s) |
|---|---|
|
| |
| Cave Sites (late Pleistocene) | Long et al. |
| Mt. Etna deposits (∼0.28–0.50 Ma) | Hocknull |
|
| |
| Childer’s Cove (∼1.81–2.59 Ma) | Piper et al. |
| Dog Rocks Local Fauna (∼1.81–2.59 Ma) | Piper et al. |
| Awe Local Fauna New Guinea (2.59–3.60 Ma) | Rich |
| Chinchilla Sands (3.4 Ma) | Rich |
| Curramulka Local Fauna (3.6 Ma) | Pledge |
| Bow Local Fauna (3.62 Ma) | Rich |
| Kanunka Local Fauna (3.4 Ma) | Tedford et al. |
| Bluff Downs Local Fauna (3.62 Ma) | Rich |
| Rackham Roost Site (∼2.6–5.3 Ma) | Archer et al. |
| Coimadai Local Fauna (3.60–5.33 Ma) | Piper et al. |
| Hamilton Local Fauna (4.46 ± 0.1 Ma) | Turnbull et al. |
| Riversleigh Two Trees Site (∼2.6–5.3 Ma) | Archer et al. |
|
| |
| Alcoota/Ongeva Local Fauna (∼7–8 Ma) | Megirian et al. |
| Riversleigh Encore Local Fauna (∼10 Ma) | Archer et al. |
| Bullock Creek Local Fauna (∼12 Ma) | Murray and Megirian |
|
| |
| Riversleigh Faunal Zone C (11.61–15.97 Ma) | Archer et al. |
|
| |
| Riversleigh Faunal Zone B (15.97–23.03 Ma) | Archer et al. |
|
| |
| Geilston Bay Deposits (23 ± 0.5 Ma) | Tedford and Kemp |
| Kangaroo Well Local Fauna (∼23.03 Ma) | Megirian et al. |
| Etadunna Formation (24.2–∼25.7 Ma) | Woodburne et al. |
| Namba Fm (∼equivalent to Etadunna Fm) | Rich |
| Riversleigh Faunal Zone A (24.7–25.0 Ma) | Archer et al. |
|
| |
| Tingamarra Local Fauna (54.6 ± 0.05 Ma) | Godthelp et al. |
Posterior probabilities and bootstrap support percentages. All clades that were supported at the 100% bootstrap and 1.00 posterior probability levels are not shown. Posterior probabilities are given as the average of the two independent runs. Partitioned = each gene was modeled to have its own model of molecular evolution; Non-partitioned = ApoB, BRCA1, IRBP, Rag1, vWF, ENAM were treated as a single gene; MP = maximum parsimony; ML = maximum likelihood
| Phylogenetic Hypothesis | MP | ML | Bayesian Analyses | ||
|---|---|---|---|---|---|
| RAxML | |||||
| Partitioned | Non-Partitioned | Partitioned | Non-Partitioned | ||
|
| 88 | 98 | 96 | 1.00 | 1.00 |
|
| 65 | 75 | 65 | 0.98 | 0.96 |
|
| 79 | 75 | 81 | 0.75 | 0.84 |
|
| 77 | 75 | 80 | 0.96 | 0.96 |
|
| 0.3 | 0 | 0.6 | 0.00 | 0.00 |
|
| 92 | 94 | 95 | 1.00 | 1.00 |
|
| 42 | 73 | 66 | 0.97 | 0.97 |
| Hemibelidinae | 99 | 99 | 99 | 1.00 | 1.00 |
Fig. 6RAxML phylograms for A. ApoB. B. BRCA1. C. ENAM. D. IRBP. E. Rag1. F. vWF.
Divergence estimates based on Multidivtime and BEAST analyses
| Clade |
| BEAST Partitioned | BEAST Non-partitioned | |||
|---|---|---|---|---|---|---|
| Partitioned | Non-partitioned | Soft Bounds | Hard Bounds | Soft Bounds | Hard Bounds | |
| Petauroidea | N/A | N/A | 35.71 (28.37–43.00) | 35.41 (28.82–42.77) | 35.69 (28.52–43.09) | 35.52 (28.85–42.85) |
| Tarsipedidae + Petauridae + Pseudocheiridae | 33.44 (28.41–39.11) | 33.36 (28.34–38.81) | 33.62 (27.07–40.86) | 33.23 (27.59–39.91) | 33.53 (26.74–40.40) | 33.28 (27.62–39.96) |
| Petauridae + Pseudocheiridae | 30.30 (26.00–35.12) | 30.03 (28.34–35.18) | 29.29 (23.17–35.39) | 29.13 (25.50–34.58) | 29.33 (23.44–35.70) | 29.21 (25.50–34.63) |
| Acrobatidae | N/A | N/A | 19.53 (13.52–25.63) | 20.38 (15.12–25.70) | 19.70 (13.71–26.20) | 20.31 (15.16–25.70) |
| Petauridae | 21.33 (17.54–25.17) | 20.74 (16.93–24.81) | 18.34 (13.83–23.17) | 18.89 (14.45–24.21) | 18.31 (13.60–22.98) | 18.80 (14.25–23.81) |
| Pseudocheiridae | 22.06 (18.29–25.41) | 20.55 (16.86–23.86) | 20.09 (15.85–24.52) | 20.50 (16.45–25.14) | 20.02 (15.69–24.33) | 20.57 (16.57–25.20) |
| Hemibelidinae | 20.46 (16.79–23.88) | 20.40 (16.78–23.65) | 18.39 (14.48–22.59) | 18.78 (14.89–23.15) | 18.31 (15.69–24.33) | 18.83 (14.90–23.13) |
| Hemibelidinae | 12.06 (9.25–15.01) | 12.20 (9.29–15.15) | 10.28 (7.17–13.47) | 10.51 (6.77–14.44) | 10.19 (7.23–13.47) | 10.49 (6.91–14.39) |
| Pseudocheirinae | 12.00 (9.30–14.92) | 12.02 (9.14–15.01) | 11.37 (8.66–14.29) | 11.72 (8.65–15.03) | 11.37 (8.70–14.28) | 11.82 (8.85–15.12) |
|
| 5.85 (4.09–7.90) | 5.63 (3.87–7.66) | 5.81 (3.99–7.72) | 5.92 (4.09–7.99) | 5.83 (4.11–7.74) | 5.99 (4.10–8.05) |
| New Guinean | 2.56 (1.56–3.85) | 2.35 (1.49–3.49) | 2.49 (1.62–3.44) | 2.52 (1.61–3.49) | 2.53 (1.68–3.50) | 2.58 (1.71–3.60) |
|
| 1.92 (1.10–2.94) | 2.09 (1.30–3.13) | 2.21 (1.39–3.08) | 2.23 (1.40–3.12) | 2.22 (1.43–3.10) | 2.26 (1.43–3.17) |
|
| 1.46 (0.77–2.33) | 1.84 (1.21–2.81) | 1.92 (1.15–2.75) | 1.94 (1.16–2.81) | 1.93 (1.14–2.73) | 1.97 (1.19–2.86) |
| Pseudochiropsinae | 11.50 (8.78–14.52) | 12.12 (9.16–15.25) | 8.83 (6.13–11.75) | 8.61 (6.02–11.63) | 8.71 (6.19–11.57) | 8.68 (6.11–11.54) |
|
| 9.71 (7.25–12.57) | 10.26 (7.55–13.21) | 7.18 (4.89–9.67) | 7.02 (4.82–9.54) | 7.11 (4.92–9.52) | 7.08 (4.92–9.58) |
| New Guinean | 8.93 (6.59–11.70) | 9.72 (7.12–12.64) | 6.67 (4.42–9.04) | 6.51 (4.36–8.89) | 6.61 (4.53–8.94) | 6.58 (4.50–8.94) |
|
| 6.51 (4.56–8.86) | 6.69 (4.61–9.18) | 4.38 (2.65–6.25) | 4.28 (2.62–6.20) | 4.33 (2.76–6.18) | 4.33 (2.67–6.29) |
|
| 19.98 (16.17–23.87) | 18.56 (14.77–22.50) | 16.05 (11.69–20.54) | 16.53 (12.24–21.39) | 15.97 (11.52–20.48) | 16.38 (12.21–21.19) |
|
| 7.51 (5.23–10.17) | 7.85 (5.34–10.91) | 5.30 (2.92–8.05) | 5.31 (2.99–8.05) | 5.25 (2.86–7.93) | 5.33 (3.08–8.10) |
|
| 2.40 (1.29–3.84) | 2.69 (1.68–4.10) | 3.17 (1.91–4.53) | 3.21 (1.94–4.61) | 3.16 (1.95–4.53) | 3.23 (2.01–4.66) |
|
| 0.97 (0.27–1.88) | 1.40 (0.75–2.31) | 1.73 (0.92–2.63) | 1.75 (0.95–2.66) | 1.73 (0.94–2.61) | 1.77 (0.96–2.69) |
Fig. 7A SIMMAP ancestral state reconstructions for geographic provenance. Posterior probabilities of ancestral state reconstructions are depicted with pie graphs at each node. B MacClade ancestral state reconstruction for geographic provenance.
Fig. 8A SIMMAP ancestral state reconstructions for maximum elevation. Posterior probabilities of ancestral state reconstructions are depicted with pie graphs at each node. B MacClade ancestral state reconstruction for maximum elevation.
SIMMAP results for ancestral state reconstructions of geographic provenance and maximum altitude occupied. Morphological priors were set to α = 3 and β = 2
| Clade | Clade Frequency | Posterior Probabilities | ||||
|---|---|---|---|---|---|---|
| Provenance | Altitude (meters) | |||||
| Australia | New Guinea | <1500 | 1500–30000 | >3000 | ||
| Pseudocheiridae | 1.0000 | 0.9694 | 0.0306 | 0.9853 | 0.0147 | 0.0000 |
| Hemibelidinae | 1.0000 | 0.9987 | 0.0013 | 0.9993 | 0.0007 | 0.0000 |
| Pseudocheirinae | 1.0000 | 0.9822 | 0.0178 | 0.9887 | 0.0113 | 0.0000 |
|
| 1.0000 | 0.7476 | 0.2524 | 0.7843 | 0.2148 | 0.0008 |
| New Guinean | 1.0000 | 0.0000 | 1.0000 | 0.0000 | 0.8397 | 0.1603 |
|
| 0.7457 | 0.0000 | 1.0000 | 0.0000 | 0.0106 | 0.9894 |
|
| 0.9595 | 0.0000 | 1.0000 | 0.0000 | 0.1388 | 0.8612 |
| Pseudochiropinae | 1.0000 | 0.9154 | 0.0846 | 0.9400 | 0.0600 | 0.0000 |
|
| 1.0000 | 0.1287 | 0.8713 | 0.1411 | 0.8589 | 0.0000 |
| New Guinean | 0.9748 | 0.0002 | 0.9998 | 0.0001 | 0.9995 | 0.0004 |
|
| 1.0000 | 0.0001 | 0.9999 | 0.0000 | 0.9272 | 0.0728 |
| Hemibelidinae + Pseudochiropinae | 1.0000 | 0.9986 | 0.0014 | 0.9994 | 0.0006 | 0.0000 |