Studies in the Hypoxidaceae. I. Vegetative morphology and anatomyt

Bothalia ◽  
1976 ◽  
Vol 12 (1) ◽  
pp. 111-117 ◽  
Author(s):  
M. F. Thompson
Keyword(s):  

The leaf and corm morphology and anatomy of representatives of the genera  Spiloxene, Pauridia and Empodium were studied. The corms are annual and tunicated, except in the group Aquaticae of Spiloxene. They are swollen stems consisting of a number of internodes. In Spiloxene and Pauridia the roots grow from the base of the corm, while in Empodium they develop from the sides. The epidermis of the older corms is replaced by several layers of thin-walled cork. Characters of the corm coverings are used to divide  Spiloxene into six groups. Four leaf forms are recognised namely carinate, terete, canaliculate and plicate. Multicellular processes and unicellular hairs occur occasionally.The leaf stomata are paracytic. Most species have mucilage canals containing pectic compounds of mucopoly­saccharides. The vascular bundles have complete or incomplete bundle sheaths and larger bundles have sclerenchyma caps.

Author(s):  
D Xing ◽  
W Chen ◽  
J Ma ◽  
L Zhao

In nature, bamboo develops an excellent structure to bear nature forces, and it is very helpful for designing thin-walled cylindrical shells with high load-bearing efficiency. In this article, the cross-section of bamboo is investigated, and the feature of the gradual distribution of vascular bundles in bamboo cross-section is outlined. Based on that, a structural bionic design for thin-walled cylindrical shells is presented, of which the manufacturability is also taken into consideration. The comparison between the bionic thin-walled cylindrical shell and a simple hollow one with the same weight showed that the load-bearing efficiency was improved by 44.7 per cent.


1989 ◽  
Vol 67 (9) ◽  
pp. 2636-2645 ◽  
Author(s):  
Diane M. Erwin ◽  
Ruth A. Stockey

One small monocotyledon petiole, 1.8 × 1.5 mm wide, has been recovered from the Princeton chert in the Middle Eocene Allenby Formation, British Columbia. The petiole, rectangular in transverse outline, shows approximately 36 circular to oval-shaped vascular bundles within aerenchymatous ground tissue that includes tannin cells. The epidermis is underlain by a discontinuous hypodermis of thick-walled, pitted cells. Vascular bundles are in five series: (I) a median U-shaped arc of 11 – 13 bundles; (II) an abaxial arc of 6 bundles located below the main arc; (III) two short abaxial arcs of 3 bundles each; (IV) 2 bundles just below the abaxial surface; and (V) an adaxial series of 7 bundles that show an inverse orientation to those bundles in series I–IV. Larger bundles are collateral, with a protoxylem lacuna encircled by a ring of 9 – 14 thin-walled parenchyma cells, a relatively well-developed phloem strand, and one to three thin-walled metaxylem elements. Based on bundle arrangement, orientation, and morphology, the fossil petiole most closely resembles those of the Butomaceae and Alismataceae. This new species, Heleophyton helobiaeoides Erwin and Stockey gen. et sp.nov., in the Princeton chert flora, documents the presence of the Alismataceae in the Middle Eocene of western North America and provides further evidence that the locality represents an ancient aquatic ecosystem.


2016 ◽  
Vol 69 (4) ◽  
Author(s):  
Halyna Kalashnyk ◽  
Nataliia Nuzhyna ◽  
Maryna Gaidarzhy

<p>Three-month-old seedlings of 11 species of the subfamily Cactoideae (<em>Melocactus bahiensis</em>, <em>Melocactus curvispinus</em>, <em>Echinopsis eyriesii</em>, <em>E. mirablis</em>, <em>E. peruviana</em>, <em>Oreocereus celsianus</em>, <em>Rebutia flavistyla</em>, <em>Rebutia minuscula</em>, <em>Astrophytum myriostigma</em>, <em>Mamillaria columbiana</em>, and <em>M. prolifera</em>) have been studied. These plants exhibit a uniseriate epidermis, covered by a thin cuticle. Except for <em>E. peruviana</em> and <em>A. myriostigma</em>, no hypodermis could be detected. The shoots of all studied specimens consist mainly of cortex parenchyma with large thin-walled cells. The pith parenchyma is composed of much smaller cells. Due to the fact that the cortex parenchyma comprises the largest portion of the cross-sectional area, it can be concluded that it is the main water-storing tissue. The extent of vascular tissue development varies. Collateral vascular bundles are present in the stele. The studied seedlings contain various ergastic substances, in particular inclusions of calcium oxalate (all studied species), starch (<em>Mammillaria prolifera</em>, <em>E. mirabilis</em>, and the genus <em>Melocactus</em>), inulin-like inclusions, and occasionally lipid drops (some <em>Echinopsis</em> species).</p><p>Thus, it was found that all studied plants have a highly specialized anatomical and morphological structure. At the same time, the epidermis and hypodermis are poorly developed. Accordingly, the adaptation to arid conditions of the examined seedlings involves an increased growth of the water-storing tissue and the production of ergastic substances.</p>


2020 ◽  
Vol 155 ◽  
pp. 106936 ◽  
Author(s):  
Felipe Luis Palombini ◽  
Jorge Ernesto de Araujo Mariath ◽  
Branca Freitas de Oliveira

In the fourth of this series of Memoirs (‘Phil. Trans.,' 1873, p. 377, et seq .) I described a remarkable plant under the name of Dictyoxylon Oldhamium ; I also gave reasons for substituting the late Mr. Gourlie ’s generic name of Lyginodendron for that of Dictyoxylon . In the same Memoir (p. 403) I referred to some petioles, to which I proposed to assign the name of Edraxylon ; but later researches demonstrated the necessity for abandoning this as a generic term and substituting for it the more comprehensive one of Rachiopteris aspera . In my Memoir, Part VI. ('Phil. Trans.,' 1874, Plate 2, p. 679, et seq .), I described this proposed Edraxylon under the name of Rachiopteris aspera . Certain similar features exhibited by the above two plants led me to remark in Memoir IV., p. 403, after showing that the Rachiopteris aspera was obviously the petiole of a Fern, “I think it far from impossible that these may prove to belong to Dictyoxylon ( Lyginodendron ) Oldhamium ; but since I have not yet succeeded in correlating them with any certainty, 1 shall add no more respecting them at present.” Since 1873 1 have accumulated a vast amount of material illustrative of the structure and relations of these two plants, and am now in a position to demonstrate that they respectively represent the stem and petiole of the same organism which proves to be a Fern. I was long under the conviction that the remarkable exogenous development of the stems of many of the Carboniferous Cryptogams, which I have so continuously demonstrated to exist, and which is now so universally recognised by Palæontologists, had no existence amongst Ferns. I have now to show that this development did exist amongst Ferns as well as amongst the arborescent Lycopods and Calamites, in which it is so conspicuous. Fig. 1 (Plate 12) is part of a transverse section of a stem or branch of Lyginodendron Oldhamium , in which a represents the medulla; b , the exogenous xylem zone; c , the place of the inner cortex, wanting in this specimen; d , one of the pairs of vascular bundles, so characteristic of the, cortex of this plant; e , the outermost cortex, composed, in transverse sections, of radiating bands of sclerenchyma, g , alternating with parenchymatous areas, f . At k, k we find two bundles of tracheids, like those at d , forming the centre of the cortical structures of a petiole of Rachiopteris aspera , i, i , which petiole is organically united to the cortex e of the Lyginodendron . The two bundles k, k are assuming the oblique relative positions seen in the similar bundles of the free petiole of R. aspera , represented in fig. 2. Other sections in my cabinet, similar to fig. 1, demonstrate the same facts, viz., that the pairs of bundles, fig. 1, d , which form so characteristic a feature of transverse sections of the middle cortex of Lyginodendrom Oldhamium , pass outwards, through the outer cortex, to become the tracheæal bundles of the petioles of the plant, and which petioles I had previously designated Rachiopteris aspera . I may state that my friend Graf Solms-Laubach, who has obtained numerous specimens of the Lyginodendron associated with others of Rachiopteris aspera from a locality on the continent, agrees with me in the conclusion at which I have arrived respecting their unity. The more perfect specimens of the Lyginodendron obtained during the last seventeen years have thrown yet further light upon those figured in 1873. In the latter, as at fig. 1, c, no traces of the middle bark were preserved; but examples from Halifax, for which I am indebted to my friends Mr. Cash and Mr. Spencer, of Halifax, have supplied what was wanting. Fig. 3 is a transverse section in which this inner cortex, c , is shown to consist of a zone of extremely delicate, thin-walled parenchymatous cells, scattered throughout which are numerous gum-canals, l . Three of these canals are represented, enlarged 250 diameters, in figs. 4 and 5, embedded in the thin-walled cells, c, c , of the cortex.


2020 ◽  
Vol 63 (2) ◽  
pp. 185-193
Author(s):  
Yuvarani Seenu ◽  
Koshila Ravi Ravichandran ◽  
Anaswara Sivadas ◽  
Balachandar Mayakrishnan ◽  
Muthukumar Thangavelu

The anatomical description of vegetative parts of Taberenaemontana alternifolia L. belonging to the family Apocynaceae was investigated in the present study. The leaves of T. alternifolia is hypostomatic with paracytic stomata, uniseriate epidermis made up of thin-walled parenchymatous cells covered by thin cuticle on both adaxial and abaxial surfaces. The hypodermis comprises of angular collenchyma cells. Mesophyll is dorsiventral containing silica bodies and vascular bundles are bicollateral. The petiole is flattened adaxially and arch-shaped abaxially with a uniseriate epidermis covered by a thin cuticle. The hypodermis is 7-8 layered angular collenchyma cells consisting of laticifers and parenchymatic, cortical layers consisting of silica bodies and thick-walled fibers and U-shaped bicollateral vascular bundles. Secondary growth in stems is characterized by the formation of periderm and thick-walled fibers in the vascular tissues. Bicollateral vascular bundles are covered by sclerenchymatous patches, parenchymatous cortex and pith consist of fibers, laticifers and silica bodies. The root possess unicellular root hairs, compactly arranged thin-walled uniseriate epidermis, 16-18 layered cortex containing silica bodies and fibers, indistinct endodermis, radially arranged vascular bundles and 14-16 arched xylem. Pitted water-storage cells are present in the conjunctive tissue. Lignin deposition was observed in the root stelar region and pith is absent.


2008 ◽  
Vol 65 (1) ◽  
pp. 11-21 ◽  
Author(s):  
L. Q. Matias ◽  
A. Soares ◽  
V. L. Scatena

The anatomical characters of the scape of Echinodorus glandulosus, E. lanceolatus, E. palaefolius, E. paniculatus, E. pubescens and E. subalatus subsp. subalatus (Alismataceae) were examined. These six sympatric species occur in northeastern Brazil and demonstrate great morphological similarity. The aim of the present study was to identify anatomical characters of taxonomic importance. Scapes possess a uniseriate epidermis composed of thin-walled tabular cells. The scapes of most species have differentiated epidermis, cortex, and vascular cylinders. There are several layers of regular chlorenchyma cells immediately below the epidermis, intercalated with collateral vascular bundles, in all species. There are also laticiferous ducts throughout the scape, and aerenchyma in both the cortex and pith. The shape and outline of scapes, the presence and position of winged extensions, the absence of differentiated vascular cylinders or cortex, and the number of vascular bundles are important characters for differentiating species in Echinodorus. An identification key employing the features analysed is provided.


1978 ◽  
Vol 56 (24) ◽  
pp. 3096-3104 ◽  
Author(s):  
Gar W. Rothwell

The recent discovery of numerous permineralized frond segments in Upper Pennsylvanian sediments provides an opportunity to describe a new genus of the Sermayaceae and further enhance our knowledge of Paleozoic filicaleans. Specimens of Doneggia complura gen. et sp. nov. consist of up to three orders of biseriately branched frond segments with abaxial curvature of the vascular strand in proximal pinnae and large sori of superficially borne sporangia on laminar pinnules. Sori occur on pinnule lobes below vascular bundles and consist of about 25–35 sporangia. Individual sporangia are oblong, 0.6 mm long and 0.45 mm in maximum diameter, and are attached by a short stalk. As in Sermaya, the horizontal–oblique annulus consists of two rows of interfingering cells and is interrupted at one side by a narrow band of longitudinally oriented, thin-walled cells that presumably acts as a zone of dehiscence. Also, as in Sermaya, the vascular bundles have adaxially disposed protoxylem strands and crowded bordered pits on walls of the metaxylem tracheids. Spores are radial, trilete, triangular in polar view, and measure 45–63 μm in diameter. Material of this type helps demonstrate that some taxa that are currently assigned to the Coenopteridales actually represent vegetative organs of Paleozoic filicaleans.


2014 ◽  
Vol 59 (1) ◽  
pp. 55-61 ◽  
Author(s):  
Kishore S. Rajput ◽  
Bharat D. Chaudhary ◽  
Vidya S. Patil

Abstract Stems of Ipomoea obscura Ker Gawl., increase in thickness by forming multiple rings of cambia. Stems 5-6 mm thick produce parenchymatous derivatives which divide repeatedly to form small arcs of cambium. Several such small arcs initiate simultaneously and form a ring of small cambial arcs. After the formation of a few xylem and phloem elements, all these arcs are interconnected by transdifferentiation of parenchyma cells present between the cambial arcs and constitute a complete cambial cylinder. This newly formed cambium is functionally bidirectional: earlier- formed arcs produce xylem centripetally and phloem centrifugally, while later-formed segments exclusively produce thin-walled parenchyma cells on either side. Young stems are circular in cross section but as stem thickness increases they become oval to elliptic or lobed and dumbbell-shaped. Xylem rays are mostly uni- or biseriate and thin-walled, but multiseriate rays characteristic for a climbing habit are observed occasionally. In thick stems, the marginal ray parenchyma in most of the samples becomes meristematic and develops ray cambia which exclusively produce sieve elements. Similarly, parenchyma cells produced from later-formed cambial segments give rise to several irregularly oriented vascular bundles. The secondary xylem is diffuse porous, with indistinct growth rings and is composed of fibriform and wider vessels, fibres, and axial and ray parenchyma cells, while phloem consists of sieve elements, companion cells, and axial and ray parenchyma cells.


2019 ◽  
Vol 59 (2) ◽  
pp. 181-214
Author(s):  
Gary A. Pattemore ◽  
Andrew C. Rozefelds

Abstract The morphology of the adaxial structures of cones belonging to Palissya Endlicher 1847 emend. nov. are reinterpreted based on exquisitely preserved permineralised material from the Lower Cretaceous of Queensland. Although the material was not found in situ, it likely derives from the Orallo Formation, which is Valanginian in age. The cones have dual vascular bundles in each bract/scale complex, and the different tissue types in the bract and ovule/scale complex support interpretation of the cone as a compound structure. Since the early twentieth century it has been widely accepted that each ovule is surrounded by a cup-shaped structure, but the detailed morphology of the “cup” has hitherto been unclear. These new three-dimensionally preserved specimens with in situ ovules are described as Palissya tillackiorum sp. nov. This study demonstrates that the “cup” is formed from a pair of thin scales that subtend but are not fused to each ovule; each pair of scales comprises a thicker outer and thinner inner scale. The organographic relationships among ovules and scales in Palissya show a high degree of synorganisation. The adaxial surface of the bract/scale complex has 2–6 pairs of erect (orthotropous) ovules. The ovule/scale units are arranged symmetrically in two parallel rows on either side of the midline of the bract/scale. Individual ovule/scale units are comparable to those seen in extant Podocarpaceae and Taxaceae. The ovules are thin-walled and are interpreted to have a single integument and a non-thickened (non-lignified) micropyle. These new insights allow reinterpretation of material previously referred to Palissya. A new species is described from Yorkshire, England, as P. harrisii C.R. Hill ex Pattemore & Rozefelds sp. nov. All species based on well preserved cones are reconsidered herein: P. sphenolepis (Braun 1843) Nathorst 1908 emend. Florin 1958, P. elegans Parris, Drinnan & Cantrill 1995 emend. nov., P. bartrumii Edwards 1934 emend. nov., P. antarctica Cantrill 2000 and P. hunanensis Wang 2012. Palissya ovalis Parris et al. 1995 differs structurally from Palissya and is transferred to Knezourocarpon Pattemore 2000 emend. nov. Representatives of this genus may superficially resemble those of Palissya in compressions and impressions, and their congeneric status has been previously suggested; hence its inclusion in this study. Knezourocarpon has adaxial processes that are positioned in two parallel rows but it lacks ovules and paired lateral scales that formed a cup-shape, and its processes attach directly to a central vascular trace. The improved understanding of Palissya’s morphology allows for definite separation of these genera, although the higher-order affiliation of Knezourocarpon remains unclear.


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