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1.
Proc Natl Acad Sci U S A ; 115(4): E822-E831, 2018 01 23.
Article in English | MEDLINE | ID: mdl-29317538

ABSTRACT

Water availability is a potent regulator of plant development and induces root branching through a process termed hydropatterning. Hydropatterning enables roots to position lateral branches toward regions of high water availability, such as wet soil or agar media, while preventing their emergence where water is less available, such as in air. The mechanism by which roots perceive the spatial distribution of water during hydropatterning is unknown. Using primary roots of Zea mays (maize) we reveal that developmental competence for hydropatterning is limited to the growth zone of the root tip. Past work has shown that growth generates gradients in water potential across an organ when asymmetries exist in the distribution of available water. Using mathematical modeling, we predict that substantial growth-sustained water potential gradients are also generated in the hydropatterning competent zone and that such biophysical cues inform the patterning of lateral roots. Using diverse chemical and environmental treatments we experimentally demonstrate that growth is necessary for normal hydropatterning of lateral roots. Transcriptomic characterization of the local response of tissues to a moist surface or air revealed extensive regulation of signaling and physiological pathways, some of which we show are growth-dependent. Our work supports a "sense-by-growth" mechanism governing hydropatterning, by which water availability cues are rendered interpretable through growth-sustained water movement.


Subject(s)
Models, Biological , Plant Roots/growth & development , Water/physiology , Gene Expression Regulation, Plant , Plant Development , Zea mays
2.
Plant Cell ; 28(8): 1769-82, 2016 08.
Article in English | MEDLINE | ID: mdl-27503468

ABSTRACT

Water is the most limiting resource on land for plant growth, and its uptake by plants is affected by many abiotic stresses, such as salinity, cold, heat, and drought. While much research has focused on exploring the molecular mechanisms underlying the cellular signaling events governing water-stress responses, it is also important to consider the role organismal structure plays as a context for such responses. The regulation of growth in plants occurs at two spatial scales: the cell and the organ. In this review, we focus on how the regulation of growth at these different spatial scales enables plants to acclimate to water-deficit stress. The cell wall is discussed with respect to how the physical properties of this structure affect water loss and how regulatory mechanisms that affect wall extensibility maintain growth under water deficit. At a higher spatial scale, the architecture of the root system represents a highly dynamic physical network that facilitates access of the plant to a heterogeneous distribution of water in soil. We discuss the role differential growth plays in shaping the structure of this system and the physiological implications of such changes.


Subject(s)
Plants/metabolism , Water/metabolism , Cell Wall/metabolism , Dehydration , Desiccation , Droughts
3.
J Exp Bot ; 66(8): 2145-54, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25617469

ABSTRACT

Water is fundamental to plant life, but the mechanisms by which plant roots sense and respond to variations in water availability in the soil are poorly understood. Many studies of responses to water deficit have focused on large-scale effects of this stress, but have overlooked responses at the sub-organ or cellular level that give rise to emergent whole-plant phenotypes. We have recently discovered hydropatterning, an adaptive environmental response in which roots position new lateral branches according to the spatial distribution of available water across the circumferential axis. This discovery illustrates that roots are capable of sensing and responding to water availability at spatial scales far lower than those normally studied for such processes. This review will explore how roots respond to water availability with an emphasis on what is currently known at different spatial scales. Beginning at the micro-scale, there is a discussion of water physiology at the cellular level and proposed sensory mechanisms cells use to detect osmotic status. The implications of these principles are then explored in the context of cell and organ growth under non-stress and water-deficit conditions. Following this, several adaptive responses employed by roots to tailor their functionality to the local moisture environment are discussed, including patterning of lateral root development and generation of hydraulic barriers to limit water loss. We speculate that these micro-scale responses are necessary for optimal functionality of the root system in a heterogeneous moisture environment, allowing for efficient water uptake with minimal water loss during periods of drought.


Subject(s)
Humidity , Plant Roots/physiology , Dehydration , Organ Specificity , Plant Development , Plant Roots/growth & development , Signal Transduction
4.
Plant Physiol ; 166(2): 551-9, 2014 Oct.
Article in English | MEDLINE | ID: mdl-25125504

ABSTRACT

The root endodermis is characterized by the Casparian strip and by the suberin lamellae, two hydrophobic barriers that restrict the free diffusion of molecules between the inner cell layers of the root and the outer environment. The presence of these barriers and the position of the endodermis between the inner and outer parts of the root require that communication between these two domains acts through the endodermis. Recent work on hormone signaling, propagation of calcium waves, and plant-fungal symbiosis has provided evidence in support of the hypothesis that the endodermis acts as a signaling center. The endodermis is also a unique mechanical barrier to organogenesis, which must be overcome through chemical and mechanical cross talk between cell layers to allow for development of new lateral organs while maintaining its barrier functions. In this review, we discuss recent findings regarding these two important aspects of the endodermis.


Subject(s)
Plant Roots/physiology , Calcium/metabolism , Fungi/physiology , Morphogenesis , Plant Roots/metabolism , Plant Roots/microbiology , Signal Transduction , Symbiosis , Water
5.
Proc Natl Acad Sci U S A ; 111(25): 9319-24, 2014 Jun 24.
Article in English | MEDLINE | ID: mdl-24927545

ABSTRACT

The architecture of the branched root system of plants is a major determinant of vigor. Water availability is known to impact root physiology and growth; however, the spatial scale at which this stimulus influences root architecture is poorly understood. Here we reveal that differences in the availability of water across the circumferential axis of the root create spatial cues that determine the position of lateral root branches. We show that roots of several plant species can distinguish between a wet surface and air environments and that this also impacts the patterning of root hairs, anthocyanins, and aerenchyma in a phenomenon we describe as hydropatterning. This environmental response is distinct from a touch response and requires available water to induce lateral roots along a contacted surface. X-ray microscale computed tomography and 3D reconstruction of soil-grown root systems demonstrate that such responses also occur under physiologically relevant conditions. Using early-stage lateral root markers, we show that hydropatterning acts before the initiation stage and likely determines the circumferential position at which lateral root founder cells are specified. Hydropatterning is independent of endogenous abscisic acid signaling, distinguishing it from a classic water-stress response. Higher water availability induces the biosynthesis and transport of the lateral root-inductive signal auxin through local regulation of tryptophan aminotransferase of Arabidopsis 1 and PIN-formed 3, both of which are necessary for normal hydropatterning. Our work suggests that water availability is sensed and interpreted at the suborgan level and locally patterns a wide variety of developmental processes in the root.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/growth & development , Plant Roots/growth & development , Tryptophan Transaminase/metabolism , Water , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Plant Roots/genetics , Tryptophan Transaminase/genetics
6.
Biotechnol Appl Biochem ; 61(2): 75-81, 2014.
Article in English | MEDLINE | ID: mdl-23692609

ABSTRACT

Collagen and gelatin-based biomaterials are widely used in tissue engineering applications. Various methods have been reported for the cross-linking of these macromolecules for the purpose of delaying their biodegradation to prolong their in vivo residence (in tissue engineering applications) or tailoring their drug releasing capacity (when used as drug carriers). In this study, a carbodiimide-based cross-linking method, also used in the production of United States Food and Drug Administration-approved products, was employed to obtain differentially cross-linked gelatin beads. The colorimetric determination of the in vitro enzymatic susceptibility of the beads indicated that the resistance to degradation linearly correlated with the concentration of carbodiimide used for the cross-linking reaction. This result was also confirmed in vivo by the histological evaluation of the residence time of orthotopically injected cell-seeded beads. These data would indicate that the production of gelatin-based microbeads with tunable degradation profiles might be applicable toward the development of products that catalyze regeneration of kidney and other solid organs.


Subject(s)
Biocompatible Materials/chemistry , Gelatin/chemistry , Kidney/surgery , Regeneration , Biocompatible Materials/pharmacology , Cross-Linking Reagents/chemistry , Drug Carriers , Gelatin/pharmacology , Humans , Kidney/growth & development , Microscopy, Electron, Scanning , Microspheres , Regeneration/drug effects , Tissue Engineering , United States , United States Food and Drug Administration
7.
Methods Mol Biol ; 1001: 207-14, 2013.
Article in English | MEDLINE | ID: mdl-23494432

ABSTRACT

There are many important considerations in the design, construction, and use of a bioreactor for growing hollow organs such as vessels, gastrointestinal tissue, esophagus, and others. The growth of new organs requires a specialized container that provides sterility and an environment conducive to cell-seeding and attachment onto a three-dimensional bioabsorbable porous scaffold, incubation, maturation, and shipping for implantation. The materials' selection, dimensions, manufacturing, testing, and use of the bioreactor are all factors that should be considered in designing a bioreactor for the development of hollow organs.


Subject(s)
Bioreactors , Organ Culture Techniques/instrumentation , Organ Culture Techniques/methods , Organogenesis/physiology , Tissue Engineering/methods , Urinary Tract/cytology , Humans , Tissue Scaffolds
8.
Methods Mol Biol ; 1001: 279-87, 2013.
Article in English | MEDLINE | ID: mdl-23494437

ABSTRACT

Delivery of cells to organs has primarily relied on formulating the cells in a nonviscous liquid carrier. We have developed a methodology to isolate selected renal cells (SRC) that have provided functional stability to damaged kidneys in preclinical models (Kelley et al. Poster presentation at 71st scientific sessions of American diabetes association , 2011; Kelley et al. Oral presentation given at Tissue Engineering and Regenerative Medicine International Society (TERMIS)-North America annual conference, 2010; Presnell et al. Tissue Eng Part C Methods 17:261-273, 2011; Kelley et al. Am J Physiol Renal Physiol 299:F1026-F1039, 2010). In order to facilitate SRC injection into the kidney of patients who have chronic kidney disease, we have developed a strategy to immobilize the cells in a hydrogel matrix. This hydrogel (gelatin) supports cells by maintaining them in a three-dimensional state during storage and shipment (both at cold temperatures) while facilitating the delivery of cells by liquefying when engrafting into the kidney. This chapter will define a method for the formulation of the kidney epithelial cells within a hydrogel.


Subject(s)
Cell Transplantation/methods , Epithelial Cells/cytology , Kidney Diseases/therapy , Kidney/cytology , Regenerative Medicine/methods , Tissue Engineering/methods , Animals , Hydrogel, Polyethylene Glycol Dimethacrylate , Rats
9.
Cell Transplant ; 20(11-12): 1771-90, 2011.
Article in English | MEDLINE | ID: mdl-21439130

ABSTRACT

Development of a tissue-engineered neo-kidney augment (NKA) requires evaluation of defined, therapeutically relevant cell and cell/biomaterial composites (NKA constructs) for regenerative potential in mammalian kidney. Previous work identified primary renal cell populations that extended survival and improved renal function in a rodent model of chronic kidney disease (CKD). This study extends that work toward the goal of developing NKA by (i) screening in vivo inflammatory and fibrotic responses to acellular biomaterials delivered to healthy rodent renal parenchyma, (ii) evaluating the functionality of renal cell/biomaterial combinations in vitro, (iii) generating NKA constructs by combining therapeutically relevant cell populations with biocompatible biomaterial, and (iv) evaluating in vivo neokidney tissue development in response to NKA constructs delivered to healthy rodent renal parenchyma. Gelatin and hyaluronic acid (HA)-based hydrogels elicited the least inflammatory and fibrotic responses in renal parenchyma relative to polycaprolactone (PCL) and poly(lactic-co-glycolic acid) (PLGA) beads or particles and were associated with neovascularization and cellular infiltration by 4 weeks postimplantation. Renal cell populations seeded onto gelatin or HA-based hydrogels were viable and maintained a tubular epithelial functional phenotype during an in vitro maturation of 3 days as measured by transcriptomic, proteomic, secretomic, and confocal immunofluorescence assays. In vivo delivery of cell-seeded NKA constructs (bioactive renal cells + gelatin hydrogels) to healthy rodent renal parenchyma elicited neokidney tissue formation at 1 week postimplantation. To investigate a potential mechanism by which NKA constructs could impact a disease state, the effect of conditioned media on TGF-ß signaling pathways related to tubulo-interstitial fibrosis associated with CKD progression was evaluated. Conditioned medium was observed to attenuate TGF-ß-induced epithelial-mesenchymal transition (EMT) in vitro in a human proximal tubular cell line (HK2).


Subject(s)
Kidney/cytology , Tissue Engineering , Animals , Cell Adhesion , Cell Survival , Cells, Cultured , Dogs , Epithelial-Mesenchymal Transition/drug effects , Gelatin/chemistry , Gene Expression Profiling , Humans , Hydrogels/chemistry , Kidney/metabolism , Kidney/pathology , Lactic Acid/chemistry , Polyglycolic Acid/chemistry , Polylactic Acid-Polyglycolic Acid Copolymer , Proteome/analysis , Rats , Rats, Inbred Lew , Transforming Growth Factor beta/pharmacology
10.
Proc Natl Acad Sci U S A ; 107(47): 20251-6, 2010 Nov 23.
Article in English | MEDLINE | ID: mdl-21059932

ABSTRACT

The concept of using cholinesterase bioscavengers for prophylaxis against organophosphorous nerve agents and pesticides has progressed from the bench to clinical trial. However, the supply of the native human proteins is either limited (e.g., plasma-derived butyrylcholinesterase and erythrocytic acetylcholinesterase) or nonexisting (synaptic acetylcholinesterase). Here we identify a unique form of recombinant human butyrylcholinesterase that mimics the native enzyme assembly into tetramers; this form provides extended effective pharmacokinetics that is significantly enhanced by polyethylene glycol conjugation. We further demonstrate that this enzyme (but not a G117H/E197Q organophosphorus acid anhydride hydrolase catalytic variant) can prevent morbidity and mortality associated with organophosphorous nerve agent and pesticide exposure of animal subjects of two model species.


Subject(s)
Butyrylcholinesterase/pharmacology , Chemical Warfare Agents/toxicity , Neuroprotective Agents/pharmacology , Nicotiana/metabolism , Organophosphorus Compounds/toxicity , Pesticides/toxicity , Animals , Butyrylcholinesterase/metabolism , Butyrylcholinesterase/pharmacokinetics , Chemical Warfare Agents/metabolism , Chromatography, High Pressure Liquid , Guinea Pigs , Humans , Immunoblotting , Kinetics , Mice , Neuroprotective Agents/metabolism , Neuroprotective Agents/pharmacokinetics , Organophosphorus Compounds/metabolism , Pesticides/metabolism , Polyethylene Glycols/metabolism , Protein Engineering
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