Large-Flowered Trilliums Coming up in Spring in Our Childhoo
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Texas Trillium Arlington, Texas Ecological Services Field Office
U.S. FishU.S &. FishWildlife & Wildlife Service Service Texas Trillium Arlington, Texas Ecological Services Field Office Texas Trillium Trillium texanum Description Texas trillium belongs to the Liliaceae (lily) family and are rhizomatous herbs with unbranched stems. Trillium plants produce no true leaves or stems aboveground. Texas trillium has solitary white to pale pink flowers on a short stalk, situated above three bracteal leaves. It is the only trillium species in Texas with numerous stomata (specialized cells which open and close to regulate gas and water movement into/out of the plant) on Trillium pusillum var. texanum - (Photo Credit- Jason Singhurst) upper and lower surfaces of its bracts. Longevity is unknown, but one study fern (Woodwardia areolata), and showed that white trillium (Trillium green rein orchid (Platanthera grandiflorum) lives at least 30 years clavellata). based on estimates calculated from the number of constrictions on rhizomes. Conservation Although not listed as endangered or Habitat threatened by the State of Texas, Texas trillium habitat is characterized Texas trillium is ranked as a G2 by a shaded, forest understory. It (imperiled) by NatureServe and is flowers before full leaf-out of over ranked as a Sensitive Species by the story species and before being United States Forest Service. The Distribution overtopped by other herbaceous species is also listed on Texas Parks Texas trillium occurs across thirteen species. Texas trillium is found in the and Wildlife Department’s 2010 List counties in East Texas and into ecotone between riparian baygall and of the Rare Plants of Texas and as a northwestern Louisiana (Caddo sandy pine or oak uplands in the Species of Greatest Conservation Parish). -
Guide to the Flora of the Carolinas, Virginia, and Georgia, Working Draft of 17 March 2004 -- LILIACEAE
Guide to the Flora of the Carolinas, Virginia, and Georgia, Working Draft of 17 March 2004 -- LILIACEAE LILIACEAE de Jussieu 1789 (Lily Family) (also see AGAVACEAE, ALLIACEAE, ALSTROEMERIACEAE, AMARYLLIDACEAE, ASPARAGACEAE, COLCHICACEAE, HEMEROCALLIDACEAE, HOSTACEAE, HYACINTHACEAE, HYPOXIDACEAE, MELANTHIACEAE, NARTHECIACEAE, RUSCACEAE, SMILACACEAE, THEMIDACEAE, TOFIELDIACEAE) As here interpreted narrowly, the Liliaceae constitutes about 11 genera and 550 species, of the Northern Hemisphere. There has been much recent investigation and re-interpretation of evidence regarding the upper-level taxonomy of the Liliales, with strong suggestions that the broad Liliaceae recognized by Cronquist (1981) is artificial and polyphyletic. Cronquist (1993) himself concurs, at least to a degree: "we still await a comprehensive reorganization of the lilies into several families more comparable to other recognized families of angiosperms." Dahlgren & Clifford (1982) and Dahlgren, Clifford, & Yeo (1985) synthesized an early phase in the modern revolution of monocot taxonomy. Since then, additional research, especially molecular (Duvall et al. 1993, Chase et al. 1993, Bogler & Simpson 1995, and many others), has strongly validated the general lines (and many details) of Dahlgren's arrangement. The most recent synthesis (Kubitzki 1998a) is followed as the basis for familial and generic taxonomy of the lilies and their relatives (see summary below). References: Angiosperm Phylogeny Group (1998, 2003); Tamura in Kubitzki (1998a). Our “liliaceous” genera (members of orders placed in the Lilianae) are therefore divided as shown below, largely following Kubitzki (1998a) and some more recent molecular analyses. ALISMATALES TOFIELDIACEAE: Pleea, Tofieldia. LILIALES ALSTROEMERIACEAE: Alstroemeria COLCHICACEAE: Colchicum, Uvularia. LILIACEAE: Clintonia, Erythronium, Lilium, Medeola, Prosartes, Streptopus, Tricyrtis, Tulipa. MELANTHIACEAE: Amianthium, Anticlea, Chamaelirium, Helonias, Melanthium, Schoenocaulon, Stenanthium, Veratrum, Toxicoscordion, Trillium, Xerophyllum, Zigadenus. -
Woodland/Shade Gardening by Jimi Blake
V OLUME 24, I SSUE 4 O CTOBER— DECEMBER 2015 Piedmont Chapter North American Rock Garden Society The Trillium Chapel Hill, Durham, Raleigh, NC Woodland/Shade Gardening By Jimi Blake Woodland plants are the brave plants that burst into flower in the spring lifting my spirit and encouraging me to start back to gardening in Hunting Brook, Co. Wicklow, Ireland. These plants are so important in the garden to extend the season of interest and brighten up a shady area. An expanse of deciduous woodland is not necessary to create a woodland garden, though it is a dream situation for this purpose but that shaded area in the corner of the garden where you dump the grass mowings can take on a whole new life, or by simply pruning a shrub to let more light under it will allow for your mini woodland garden. The other type of shade in lots of gardens is the shade creat- ed by walls, which is also suitable for growing woodland plants. In the wild, these plants flower under the dappled shade of the deciduous trees before the leaves shade out the woodland floor during the summer months. Generally the woodland plants finish flowering by early to mid sum- mer and form a ground cover of various shades of green. These plants are called spring ephemerals. Remember the secret of a good woodland garden is the preparation of the soil, as these areas can be quite dry in the summer with the roots of the trees or shrubs taking up the moisture. When I started the woodland gardens in Hunting Brook I cleared the weeds by hand and then dug over the soil and incorporated a mixture of leaf mould or garden compost, and very well rotted farmyard manure creating a delicious mixture for these woodland gems to grow well in. -
Native Plants for Conservation, Restoration & Landscaping
ABOUT THE NATIVE PLANTS FOR CONSERVATION, WHAT ARE NATIVES? For more information, refer to field guides and publications RESTORATION AND LANDSCAPING PROJECT Native species evolved within specific regions and dispersed on local natural history for color, shape, height, bloom times This project is a collaboration between the Virginia Depart- throughout their range without known human involvement. and specific wildlife value of the plants that grow in your ment of Conservation and Recreation and the Virginia Native They form the primary component of the living landscape region. Visit a nearby park, natural area preserve, forest or Plant Society. VNPS chapters across the state helped to fund and provide food and shelter for wildlife management area to learn about common plant the 2011 update to this brochure. native animal species. Native associations, spatial groupings and habitat conditions. For The following partners have provided valuable assistance plants co-evolved with specific recommendations and advice about project design, throughout the life of this project: native animals over many consult a landscape or garden design specialist with thousands to millions of experience in native plants. TheNatureConservancy–VirginiaChapter•Virginia years and have formed TechDepartmentofHorticulture•VirginiaDepartmentof complex and interdependent WHAT ARE NON-NATIVE PLANTS? AgricultureandConsumerServices•VirginiaDepartment relationships. Our native Sometimes referred to as “exotic,” “alien,” or “non- of Environmental Quality, Coastal Zone Management fauna depend on native indigenous,” non-native plants are species introduced, Program•VirginiaDepartmentofForestry•Virginia flora to provide food and DepartmentofGameandInlandFisheries•Virginia Native intentionally or accidentally, into a new region by cover. -
Seed Dispersal by Ants in Jarrah Forest Restorations of Western Australia
Seed Dispersal by Ants in Jarrah Forest Restorations of Western Australia Troy L. Wanless Introduction The jarrah forests in Western Australia cover approximately 1.75 million ha in the southwestern corner of the state (Figure 1). Jarrah, otherwise known as Eucalyptus marginata, is only one species among many that inhabit a region with considerable physical and biological diversity. 1200 species of plants, 29 mammalian species, 45 reptile species, 17 frog species, 4 fish species and 150 bird species live in this system which also has highly adverse conditions for survival. These may include infertile, often salt-laden soils, drought, and the occasional wildfire (Western Australia Forest Alliance, 2003). Considerable deposits of bauxite, which is the primary material involved in the production of aluminum, are scattered throughout the region. Since 1963, Alcoa of Australia Ltd. has cleared these jarrah forests to make way for mining of this ore. It is estimated that these deposits cover 7-8% of the forested area although only 3-4% will ever be mined due to environmental and economic constraints (Majer, 1989). These mined areas create a scattering of patches throughout the forest that are essentially stripped of any kind of biodiversity that was once there (Figure 2). Restoration efforts on these previously mined patches focus on many aspects of the jarrah forest ecosystem. Specifically interesting is the role that ants play in seed dispersal. This paper will focus on the topic of seed dispersal by ants in the northern jarrah forests of Western Australia while paying particular attention to myrmecochory. Figure 1. Location of jarrah forest in Australia Figure 2. -
Trillium, As an Indicator of Deer Density Hanover Biodiversity Committee October, 2017
[DRAFT v. 10] Trillium, as an indicator of deer density Hanover Biodiversity Committee October, 2017 Rationale for this Report Members of the lily family, such as Trillium and Clintonia, are among the favored foods of deer; 30 species of Trillium are found East of the Mississippi. The decline of these plants is mentioned in multiple publications1 as one key indicator of deer over-abundance. Red Trillium (Trillium erectum), also called ‘wake Robin’, found in the north-east and is (or was) fairly common in many Hanover forested neighborhoods. We suggest that monitoring this plant where it is (or once was) common demonstrates that deer density remains unsustainably high and future monitoring of the plant can help determine both the neighborhood density of deer and also serve as an indicator of change in deer density. Monitoring for this plant is easy, with just a small bit of training about the process. This report suggests a serious decline in biodiversity in Hanover over the past 15 years, as indicated by impact on red Trillium at three sites. We believe that with a focused increase in hunting pressure, this and other declining native plants might recover. Red Trillium is a frequent member of typical ‘rich mesic forests2’ plant communities found in Hanover; other plants often found nearby are Virginia waterleaf, blood root, wild ginger, foam flower, blue cohosh, and certain other members of the lily family. Besides aggressive deer browse, these communities are also threatened in varying degrees by invasive plants: garlic mustard, Dame’s rocket, wild parsnip, wild chervil and forget-me-not as well as the usual woody invaders. -
What's in Bloom
WHAT’S IN BLOOM April 7, 2014 5 4 6 2 7 1 9 8 3 12 10 11 1 Mertensia virginica 5 Viburnum x carlcephalum 9 Malus ‘Hopa’ Virginia Bluebells Fragrant Snowball Flowering Crabapple 2 Neviusia alabamensis 6 Prunus x serrulata ‘Shirotae’ 10 Helleborus x hybridus Alabama Snow Wreath Mt. Fuji Cherry Hellebore 3 Cercis canadensis 7 Stachyurus praecox 11 Fruit Orchard Redbud Stachyurus Apple cultivars 4 Camellia japonica 8 Rhododendron hyperythrum 12 Cercis chinensis Japanese Camellia Rhododendron Chinese Redbud WHAT’S IN BLOOM April 7, 2014 BLOMQUIST GARDEN OF NATIVE PLANTS Amelanchier arborea Common Serviceberry Sanguinaria canadensis Bloodroot Cornus florida Flowering Dogwood Stylophorum diphyllum Celandine Poppy Thalictrum thalictroides Rue Anemone Fothergilla major Fothergilla Trillium decipiens Chattahoochee River Trillium Hepatica nobilis Hepatica Trillium grandiflorum White Trillium Hexastylis virginica Wild Ginger Hexastylis minor Wild Ginger Trillium pusillum Dwarf Wakerobin Illicium floridanum Florida Anise Tree Trillium stamineum Blue Ridge Wakerobin Malus coronaria Sweet Crabapple Uvularia sessilifolia Sessileleaf Bellwort Mertensia virginica Virginia Bluebells Pachysandra procumbens Allegheny spurge Prunus americana American Plum DORIS DUKE CENTER GARDENS Camellia japonica Japanese Camellia Pulmonaria ‘Diana Clare’ Lungwort Cercis canadensis Redbud Prunus persica Flowering Peach Puschkinia scilloides Striped Squill Cercis chinensis Redbud Sanguinaria canadensis Bloodroot Clematis armandii Evergreen Clematis Spiraea prunifolia Bridalwreath -
Patterns in Evolution in Characters That Define Iris Subgenera And
Aliso: A Journal of Systematic and Evolutionary Botany Volume 22 | Issue 1 Article 34 2006 Patterns in Evolution in Characters That Define rI is Subgenera and Sections Carol A. Wilson Rancho Santa Ana Botanic Garden Follow this and additional works at: http://scholarship.claremont.edu/aliso Part of the Botany Commons Recommended Citation Wilson, Carol A. (2006) "Patterns in Evolution in Characters That Define rI is Subgenera and Sections," Aliso: A Journal of Systematic and Evolutionary Botany: Vol. 22: Iss. 1, Article 34. Available at: http://scholarship.claremont.edu/aliso/vol22/iss1/34 Aliso 22, pp. 425-433 © 2006, Rancho Santa Ana Botanic Garden PATTERNS OF EVOLUTION IN CHARACTERS THAT DEFINE IRIS SUBGENERA AND SECTIONS CAROL A. WILSON Rancho Santa Ana Botanic Garden, 1500 North College Avenue, Claremont, California 91711-3157, USA (carol. wilson@ cgu. edu) ABSTRACT Subgeneric groups have been circumscribed in Iris based on a small number of morphological characters. Recent DNA sequence data has indicated that several of the subgenera, sections, and series that have previously been delineated are paraphyletic or polyphyletic. The evolution of characters that have traditionally been used to distinguish sub generic and sectional groups within Iris was investigated by mapping these characters on a phylogenetic tree based on matK sequence data. Results indicate that rhizomes are pleisomorphic for the genus and that three bulb types have arisen independently. My analysis shows that sepal beards, sepal crests, and seed arils show extensive homoplasy. Most of the homoplasy seen is associated with the circumscription of polyphyletic subgeneric groups such as the beardless subgenus Limniris. Some additional homoplasy is due to diversity within supported clades or the historical use of a single character in circumscribing more than one subgeneric group. -
Ants, Plants, and Seed Dispersal Ignorance: How Do Ants Enhance Persistence?
Ants, Plants, and Seed Dispersal Ignorance: How do Ants Enhance Persistence? Charles Kwit, Assistant Professor, Department of Forestry, Wildlife and Fisheries [email protected] Wednesday, 11 September 2013 12:20 PM, 160 Plant Biotech Building 1 Acknowledgements 2 References Albrecht and McCarthy (2011), Plant Ecology 212: 1465-1477 Berg-Binder and Suarez (2012), Oecologia 169: 763-772 Bond (2001), American Journal of Botany 88: 234-241 Canner et al. (2012), Acta Oecologica 40: 31-39 Christian & Stanton (2004), Ecology 85: 1101-1110 Culver & Beattie (1978), Journal of Ecology 66: 53-72 Garrido et al. (2009), Acta Oecologica 35: 393-399 Gomez et al. (2003), Ecography 26: 532-538 Imbert (2006), Plant Species Biology 21: 109-117 Kwit et al. (2012), American Midland Naturalist 168: 9-17 Leal et al. (2007), Annals of Botany 99: 885-894 Lengyel et al. (2010), Perspectives in Plant Ecology, Evolution and Systematics 12: 43-55 Lobstein & Rockwood (1993), Virginia Journal of Science 44: 59-72 Lopez-Vila & Garcia-Fayos (2005), Acta Oecologica 28: 157-162 Manzaneda & Rey (2012), Ecography 35: 322-332 Martins et al. (2006), Sociobiology 47: 265-274 Ness et al. (2009), Oikos 118: 1793-1804 Ohkawara (2005), Plant Species Biology 20: 145-148 Passos & Ferriera (1996), Biotropica 28: 697-700 Rico-Gray & Oliveira (2007), The Ecology and Evolution of Ant-Plant Interactions Smith et al. (1989), Ecology 70: 1649-1656 Soriano et al. (2012), Plant Biosystems 146: 143-152 Whigham (2004), Annual Review of Ecology, Evolution and Systematics 35: 583-621 3 Outline ✤ Myrmecochory and ant-plant mutualism ✤ Ant “seed treatment” experiment ✤ New natural history information ✤ Ant “seed dispersal” experiment ✤ Future directions 4 Myrmecochory and ant-plant mutualism ✤ Seed dispersal by ants, aided by elaiosome ✤ Common phenomenon found in > 11,000 plant species (Lengyel et al. -
2009 Data Summary
USA‐NPN Technical Series 2010‐002 USA National Phenology Network 2009 Data Summary Theresa M. Crimmins1, Alyssa H. Rosemartin2, Kathryn A. Thomas3, R. Lee Marsh4, Ellen G. Denny5, Jake F. Weltzin6 1Partnerships & Outreach Coordinator, USA‐NPN National Coordinating Office; University of Arizona 2Information Technology & Communications Coordinator, USA‐NPN National Coordinating Office; University of Arizona 3Science Associate, USA‐NPN National Coordinating Office; US Geological Survey Southwest Biological Science Center 4Applications Programmer, USA‐NPN National Coordinating Office; University of Arizona 5Monitoring Design & Data Coordinator, USA‐NPN National Coordinating Office; Northeast Regional Phenology Network 6Executive Director, USA‐NPN National Coordinating Office; US Geological Survey Suggested citation: Crimmins, T.M., A.H. Rosemartin, K.A. Thomas, R.L. Marsh, E.G. Denny, J.F. Weltzin. 2010. USA National Phenology Network 2009 Data Summary. USA‐NPN Technical Series 2010‐002. www.usanpn.org. USA National Phenology Network 2009 Data Summary 2 Any use of trade, product, or firm names is for descriptive purposes only and does not imply endorsement by the U.S. Government. Although this report is in the public domain, permission must be secured from the individual copyright owners to reproduce any copyrighted material contained within this report. USA National Phenology Network 2009 Data Summary 3 TABLE OF CONTENTS ABSTRACT .......................................................................................................................................... -
Dispersal of Non-Myrmecochorous Plants by a ‘‘Keystone Disperser’’ Ant in a Mediterranean Habitat Reveals Asymmetric Interdependence
View metadata, citation and similar papers at core.ac.uk brought to you by CORE provided by Digital.CSIC Dispersal of non-myrmecochorous plants by a ‘‘keystone disperser’’ ant in a Mediterranean habitat reveals asymmetric interdependence A´ . Barroso • F. Amor • X. Cerda´ • R. R. Boulay Abstract In contrast to other plant–animal mutualisms, A. italicum, but a negligible fraction of P. lentiscus seeds. seed dispersal interactions, and particularly seed dispersal We conclude that in contrast to the common view, dispersal by ants, are generally considered asymmetric, non-special- of non-myrmecochorous Mediterranean plants by ants ized relationships in which dispersers depend less on plants might be an important phenomenon. Keystone disperser than vice versa. Although myrmecochory is well understood ants like A. senilis probably obtain an important fitness in many terrestrial ecosystems, dispersal of non-elaiosome- advantage from non-myrmecochorous diaspore collection. bearing seeds by ants has barely been studied outside the However, plant benefit may vary greatly according to the Neotropics. Aphaenogaster senilis, a common ant in amount of seeds per individual plant and the existence of Southern Spain, collects a great variety of non-myrmeco- alternative dispersal agents. chorous diaspores along with insect prey. At our study site, fleshy fruits of Arum italicum, Phillyrea angustifolia and Keywords Fleshy fruits Á Arum italicum Á Aphaenogaster Á Pistacia lentiscus represent up to one-fourth of the items Nutrition Á Dispersal collected by A. senilis from June to November. However, they are mostly ignored by other ants. In the laboratory, the addition of A. italicum fruits to A. senilis insect-based diet Introduction increased male production and both worker and queen pupae size. -
Spring Wildflowers
BLUE / VIOLET (CONTINUED) GLOSSARY (CONTINUED) Lindenwood Wildflowers Phlox (Polemoniaceae) • Corolla : the showy inner floral envelope; the segments (called • Greek Valerian (Polemonium reptans ): similar to Jacob’s-ladder petals) may be separate or joined. The wildflowers listed below are those that are most common and but stem weaker and fewer leaflets; stamens do not project • Disk (in composites): the round or button-like center (like in a daisy) Spring most-likely to be seen by park visitors; all species listed have been beyond flower. Native. April – June composed of numerous tubular disk flowers, usually surrounded by observed at the preserve in the past. Species are arranged by a circle of ray flowers. prominent flower color and then by Family. The months that are listed are the average blooming periods in this region for the flower. Snapdragon (Scrophulariaceae) • Floweret : the individual flowers of a composite/aster flower head. See the glossary for any obscure technical vocabulary included in • Thyme-leaved Speedwell (Veronica serpyllifolia ): creeping with • Head : a crowded cluster of stalk-less, or nearly stalk-less, flowers. the descriptions. A (*) located after the Family name indicates that small, 4-petaled flowers; leaves are small, opposite, toothless, • Leaflets : the smaller, individual parts of a compound leaf. Wildflowers certain general family characteristics were given in a previous color short-stalked and oval. Alien. May – Sept. • Lobed (leaf): Indented, with outer projections rounded. section. Note: edibility is not included; for your own benefit, DO • Native : originally from this area; not introduced. Violet (Violaceae) NOT ATTEMPT TO INGEST ANY WILD PLANT. • Opposite (leaves, etc.): arranged directly across from each other.