Saraca L.

First published in Mant. Pl.: 13 (1767)
This genus is accepted
The native range of this genus is S. China to Tropical Asia.

Descriptions

Legumes of the World. Edited by G. Lewis, B. Schrire, B. MacKinder & M. Lock. Royal Botanic Gardens, Kew. (2005)

Vernacular
sara, ashoka, babai, asokarista, asoka
Habit
Trees or shrubs
Ecology
Tropical lowland (sometimes swamp) rain forest, particularly along rivers and on hill slopes
Distribution
mostly in Malesia to Sulawesi (8 spp.); 3 spp. endemic to Indo-China (including Myanmar [Burma]); introduced in the Philippines and Papua New Guinea
Note
See taxonomic notes under Endertia

The Detarieae sens. lat. are pantropical in distribution, with c. 58% of the genera confined to Africa (incl. Madagascar), c. 20% to the Neotropics, and c. 12% to tropical Asia. Only Copaifera, Crudia and Cynometra are pantropical (and all possibly non monophyletic) and Afzelia, Guibourtia, Hymenaea, Intsia and Sindora are native to at least two of these regions. The apparent high level of diversity in the African tropics may in part be an artefact of the (relatively) greater taxonomic effort that has been invested in the study of the African taxa. Characteristic of African Detarieae taxonomy has been the splitting off of disparate elements as segregate genera, while this has often not been the case in the Neotropics. Both regions, however, currently contain large paraphyletic assemblages requiring detailed species-level analysis. Eighty-two genera and from (729) – 747 – (765) species are treated here in Detarieae sens. lat. (Fig. 21). Of the 132 (extant) species so far assessed for IUCN red data status, 97 have categories of threat. Of these 73 are assessed as vulnerable, 13 are endangered and 11 are critically endangered.

The remarkable range and complex patterns of floral modifications found in the Detarieae sens. lat. have proved a considerable challenge to the establishment of widely accepted and clearly circumscribed generic groupings. Based on the work of Léonard (1957) and Cowan & Polhill (1981a & b), ten informal groups of genera were proposed; the Cynometra, Hymenostegia, Hymenaea, Crudia, Detarium and Brownea groups in tribe Detarieae, and the Berlinia, Macrolobium, Amherstia and Brachystegia groups in tribe Amherstieae. Genera with imbricate bracteole aestivation were assigned to Detarieae whilst those with valvate bracteole aestivation were placed in Amherstieae. Polhill (1994) retained these generic groupings with a few additions to accommodate recently described genera, and merged the two tribes into a single broadly defined tribe, Detarieae sens. lat. Breteler (1995) proposed the recognition of two tribes within Detarieae sens. lat., separated according to the relative size and position of the paired bracteoles before anthesis. Essentially, this resulted in the reassignment of Cowan & Polhill’s Amherstia group genera (Amherstia, Tamarindus and Humboldtia) from Amherstieae to Detarieae with the remaining genera forming tribe Macrolobieae. In 1999, Breteler (pers. comm.) proposed a modified Breteler (1995) tribal system in which Macrolobieae was maintained, the circumscription of Detarieae was greatly narrowed and the genera newly excluded from Detarieae were together recognised as Cynometreae sens. strict.

The first comprehensive studies of phylogenetic relationships in tribe Detarieae sens. lat., were the analyses of Bruneau et al. (2000; 2001), based on nucleotide sequence data from the chloroplast trnL intron. They found that tribes Detarieae and Macrolobieae formed a well supported monophyletic group, which included all genera placed previously in Detarieae sens. lat., except Umtiza. Bruneau et al. (2000) examined 71 genera, with the African taxa most widely sampled. The key results of the analysis were that none of the generic groupings proposed by Cowan and Polhill (1981a & b) and Polhill (1994) were supported as strictly monophyletic, and the majority of the members of tribe Macrolobieae (although not Macrolobium) were placed as a monophyletic group derived within Detarieae sens. lat. These analyses also repeatedly recognised a second group of related genera made up entirely of resin-producing taxa, with the exception of some species of Guibourtia. The resins can be seen as translucent gland dots in the leaflets and (sometimes) other organs. Within the resin producing taxa, the genus Prioria and several members of Cowan & Polhill’s Crudia group were consistently placed together (see taxonomic notes under individual genera in main text). Another subclade within the resin-producing Detarieae comprising six members of Polhill’s Detarium group was repeatedly recognised (Bruneau et al., 2000; 2001; Fougère-Danezan et al., 2003). In addition, in the trnL intron analysis, the five sampled members of Cowan and Polhill’s Brownea group were consistently placed together with Macrolobium, although this grouping was not upheld in a more recent molecular and combined molecular-morphological analysis (Herendeen et al., 2003a). Within the exclusively African Macrolobieae of Bruneau et al. (2001), a well supported subclade of six genera was recognised by Gervais & Bruneau (2002) and as the ‘babjit’ clade sensu Wieringa & Gervais (2003). Bruneau et al. (2000; 2001) confirmed the view of Polhill (1994) that the two tribes Detarieae and Macrolobieae (sensu Breteler, 1995) are best considered a single entity. Evidence from ontogenetic studies by Tucker (2000, 2001, 2002a) challenged the validity of bracteole aestivation as a criterion for subdividing Detarieae sens. lat. and identified a set of character states associated with two modes of floral development (Circular and Omega) whose distribution amongst detarioid genera does not support Polhill’s groups.

The analyses of Herendeen et al. (2003a) united a morphological dataset with the chloroplast trnL intron dataset of Bruneau et al. (2001). The combined analysis provided mixed results within Detarieae sens. lat. compared with the molecular dataset alone. Near the base of the clade, and within some subclades, greater resolution was provided but as several groups were not well supported, it would be premature to emphasise the details of this greater resolution. Elsewhere the addition of morphological characters produced weaker resolution and a less robust phylogeny due either to conflicting phylogenetic signal or increased homoplasy in the morphological data or both. The order of taxa followed here (Fig. 21) represents a synthesis of the present understanding of putative relationships within this (perhaps most morphologically diverse) tribe in the Leguminosae. Unsampled genera in the combined analysis are inserted into this order where morphological evidence appears to suggest close relationships.

Whilst significant progress has been made since Polhill (1994), further studies (particularly including the non-African members of the larger and less well understood genera) are needed before a new comprehensive classification of the Detarieae sens. lat., based on a synthesis of all available data, can be established.

[LOWO]

Timothy M. A. Utteridge and Laura V. S. Jennings (2022). Trees of New Guinea. Kew Publishing. Royal Botanic Gardens, Kew

Distribution
A genus of about 11 species, from Indo-China, South-East Asia and Malesia as far east as Sulawesi. One native species in New Guinea: Saraca asoca (Roxb.) W.J.de Wilde., plus c. three cultivated species, one widely so: Saraca thaipingensis Prain.
Morphology General Habit
Shrubs and trees to 10(–25) m tall. Stipules fused, enclosing the bud, caducous
Morphology Leaves
Leaves produced in flushes, pale to purplish when young, spirally arranged, paripinnate, 1–7-jugate, leaflets opposite, chartaceous to coriaceous, petiolules very short, glands sometimes present at the base or apex, venation raised below, indistinct above, tertiary veins reticulate
Morphology Reproductive morphology Inflorescences
Inflorescences terminal or axillary, sometimes cauliflorous, paniculate or corymbose, often subglobose, usually many-flowered, bracts caducous or persistent
Morphology Reproductive morphology Flowers
Flowers bisexual, rarely male, pedicels articulated, each subtended by a pair of petaloid bracteoles, 4–6-merous; calyx tubular, usually yellow to red, lobes petaloid, more or less equal, imbricate; petals absent; stamens 3–10, in a single whorl, filaments exserted from the tube, equal in length, free or fused at the base, staminodes sometimes present; ovary stipitate, ovules numerous, style filiform, stigma minute
Morphology Reproductive morphology Fruits
Fruit dehiscent, suborbicular, ovoid, oblong or lanceolate, flattened, leathery to woody
Morphology Reproductive morphology Seeds
Seeds 1–8 per fruit, ellipsoid, flattened.
Ecology
Members of the genus are cultivated in gardens but might be encountered as naturalised plants in lowland areas near human habitation.
Recognition
The genus can be recognised by the paripinnate leaves, pedicels with a pair of bracteoles, the coloured calyx lobes (which appear petaloid), the absence of petals, and the dehiscent, flattened pods, with 1–8 seeds.
[TONG]

Uses

Use
Cultivated as ornamentals and shade trees (several species), and sometimes planted as sacred trees near shrines; used as a traditional medicine (named ashoka, asokarista in the trade) and timber ( babai ) for light construction and packing cases
[LOWO]

Sources

  • Herbarium Catalogue Specimens

  • Kew Names and Taxonomic Backbone

    • The International Plant Names Index and World Checklist of Vascular Plants 2024. Published on the Internet at http://www.ipni.org and https://powo.science.kew.org/
    • © Copyright 2023 International Plant Names Index and World Checklist of Vascular Plants. http://creativecommons.org/licenses/by/3.0
  • Legumes of the World Online

    • Digital Image © Board of Trustees, RBG Kew http://creativecommons.org/licenses/by-nc-sa/3.0/
    • http://creativecommons.org/licenses/by-nc-sa/3.0
  • Trees of New Guinea

    • Trees of New Guinea
    • http://creativecommons.org/licenses/by-nc-sa/3.0
  • World Checklist of Vascular plants (WCVP)

    • The International Plant Names Index and World Checklist of Vascular Plants 2024. Published on the Internet at http://www.ipni.org and https://powo.science.kew.org/
    • © Copyright 2023 World Checklist of Vascular Plants. http://creativecommons.org/licenses/by/3.0