A NOTE ON THE DISTRIBUTION OF DRY MASS AND THE ASH CONTENT IN HYPERFUNCTIONING PARATHYROID TISSUE

1955 ◽  
Vol 19 (1) ◽  
pp. 72-76 ◽  
Author(s):  
B. Engfeldt ◽  
S.-O. Hjertquist
Author(s):  
Małgorzata Romanów ◽  
Zbigniew Witek

AbstractPeriphyton communities were studied on several dominating macrophytes, Phragmites australis, Potamogeton lucens, and Nuphar lutea, in three different types of lakes. In soft-water mesotrophic Lake Mały Borek and in shallow, eutrophic Lake Gardno samples were collected about once every two months from April to November 2009. In eutrophic Szczecin Lagoon (the estuary of the Oder River), samples were only collected once in July. The aim of this paper was to determine the dry mass, the ash content, and the chlorophyll-a content of periphyton on a natural substratum, in order to determine the mass, the inorganicorganic status of periphyton, and the auto-heterotrophic character of this complex. The analyzed periphytic communities exhibited low dry mass at the beginning of the growth season, which increased with colonization period on the aquatic vegetation. The highest (but still low) values were achieved in autumn, which persisted, with small loss, until spring of the subsequent year. The differences in dry mass between each type of lake were small, but in the strongly eutrophic Szczecin Lagoon this index was slightly higher than in the other two water bodies. The highest dry mass was noted for periphyton dominated by Cordylophora caspia colonies overgrowing common reeds and for periphyton on Potamogeton lucens in Szczecin Lagoon. In shallow water bodies, such as Lake Gardno and Szczecin Lagoon, wind causes strong resuspension of sediments. This can explain the relatively high level of inorganic matter in dry mass of the periphyton in both water bodies. However, the small ash content in periphyton in Mały Borek may result from the soft-water character of this lake. The hetero-autotrophic status of the periphytic community prevailed throughout the study period in Gardno and Mały Borek lakes. The auto-heterotrophic status of periphyton was noted only in short periods of time in each lake.


2019 ◽  
Vol 25 ◽  
pp. 281-286
Author(s):  
O. V. Melnychuk ◽  
S. P. Ozheredov ◽  
D. B. Rakhmetov ◽  
S. O. Rakhmetova ◽  
O. О. Bayer ◽  
...  

Aim. The aim of the work was to study biometricl and biochemical traits of new M. × giganteus lines obtained from polyploidization with the use of new antimitotic compounds of dinitroanilines class. Methods. The study has been conducted based on biological and biochemical parameters such as: plant height, number of rhizomes, number of leaves per stalk, ratio of leaves to stems, vegetative mass, dry mass and ash content; total sugars and monosugars content; energy value of biomass. Results. It has been established that all studied lines significantly differed for all biological and biochemical parameters. The best results for majority of parameters has been observed in lines 108 and 202, and namely, vegetative mass of plants, plant height, number of rhizomes and number of leaves per stalk. Conclusions. Some lines of M.×giganteus with increased ploidy level appeared to be significantly superior to triploid forms in most biometric and biochemical parameters and require further study. Keywords: dinitroanilines, polyploids, Miscanthus × giganteus, biofuel.


1998 ◽  
Vol 25 (7) ◽  
pp. 835 ◽  
Author(s):  
J.L. Araus ◽  
T. Amaro ◽  
J. Casadesús ◽  
A. Asbati ◽  
M.M. Nachit

The relationships between ash content, carbon isotope discrimination and yield were studied in durum wheat (Triticum durum Desf.) grown in a Mediterranean region (north-western Syria) under three different water regimes (hereafter referred to as environments). Ash content (on dry mass basis) was measured in the flag leaf about 3 weeks after anthesis (leaf ash) and in mature kernels (kernel ash), whereas Δ was analysed in the penultimate leaf at heading (leaf Δ) and in mature kernels (kernel Δ). Leaf Δ was weakly or not related with the other parameters. Leaf ash correlated positively with kernel Δ (P≤0.001), even in the driest environment, which gave a mean yield of 1.5 t ha-1. For the four parameters, correlations with yield remained significant (P≤0.001) after correcting for days to heading. All the parameters showed a higher broad-sense heritability than yield. The parameter that showed the best genetic correlation with grain yield was kernel ash (r2= 0.88), followed by kernel Δ (r2 = 0.69) and leaf ash (r2 = 0.64), whereas leaf Δ (r2 = 0.26) was the least correlated parameter. Except for kernel ash, these parameters always correlated positively with grain yield. The negative relationships of kernel ash (on dry mass basis) with yield and all the other parameters may be attributable to the finding that kernel ash was higher in those genotypes more affected by drought during grain filling. Thus, kernel ash was negatively related (P≤0.001) with total kernel mass per spike. Prediction of grain yield through multiple linear regression suggests that kernel ash can be used as complementary criterion to either kernel Δ or leaf ash.


2021 ◽  
Vol 22 ◽  
Author(s):  
Geane Cordeiro Fonseca ◽  
Graziela Paula de Araújo ◽  
Natan Lima Abreu ◽  
Raimundo Vagner de Lima Pantoja ◽  
Angélica Lucélia da Silva Nascimento ◽  
...  

Abstract Hydroponic corn cultivation is an efficient, fast, and feasible alternative for periods of food scarcity; however, there is still little information on the qualitative and quantitative parameters of the produced biomass, especially with regard to substrates. This study aimed to evaluate the productive and qualitative aspects of hydroponic feed corn grown on different substrates with a cultivation period of 15 days. Four substrates were evaluated: 1) fermented whole açaí seeds, 2) crushed açaí seeds, 3) sugarcane bagasse, and 4) ground Tifton hay, with five replications under a randomized block design. Substrate temperature was monitored during the production period. After harvesting on day 15, roots length (RL), shoot length (SL), biomass dry matter content (BDM), dry biomass yield, forage dry mass productivity, crude protein (CP), and ash content were assessed. There was no correlation of growth period and substrate temperature. RL was not affected by substrates, BDM was lower in treatment 3, CP was not influenced, and ash content was higher in treatment 1. In general, the best development was observed in treatment 1 because of the absence of distinction regarding qualitative parameters (CP and ash) and higher granulometry of whole açaí seeds which affects mass density and substrate aeration, thus allowing higher dry biomass yield.


1990 ◽  
Vol 47 (5) ◽  
pp. 1011-1026 ◽  
Author(s):  
John H. Himmelman ◽  
Henri Nédélec

We examine relationships between food preferences of the urchin, Strongyhcentrotus droebachiensis, and such properties of fleshy macroalgae as dry mass, ash content, calorific value, and phenolic content. Grazing resistant algae characteristic of urchin dominated habitats rank low in attraction, reflecting the ability of urchins to detect and locate them in the field. They fall into two groups, (1) reds, Phycodrys rubens, Turnerella pennyi, and Ptilota serrata, with a high proportion of dry matter and low phenolic content, and (2) browns, Desmarestia viridis and Agarum cribrosum with low to intermediate calorific values. Algae susceptible to grazing fall into two additional groups, (3) algae with high dry mass which strongly attract urchins and are consumed at an intermediate rate (mostly annuals), and (4) readily eaten perennials which attract urchins to an intermediate degree and have high ash and low phenolic content. The susceptible algae survive through spatial and temporal escapes, mainly in shallow water where the effectiveness of urchin grazing is reduced. The urchin is a selective feeder and its ability to locate preferred algae promotes intake of foods (algae in the subtidal algal fringe and drift algae) that enhance fitness by favouring somatic and gonadal growth.


2021 ◽  
Vol 3 (4) ◽  
Author(s):  
Taisia V. Nechaeva ◽  
Natalya V. Smirnova ◽  
Sergey A. Khudayev ◽  
Ilya I. Lyubechanskii

The aim of the study was to estimate changes in chemical composition of the white birch litter during decomposition in a laboratory experiment simulating leaching and salinization. Location and time of the study. Fresh litter of Betula pendula leaves were collected in the forest-steppe zone of Priobskoe plateau (40 km to the east of Novosibirsk, Russia) in October 2016. The incubation experiment was carried out in the laboratory of Agrochemistry of the Institute of Soil Science and Agrochemistry of the Siberian Branch of the Russian Academy of Sciences (Novosibirsk, Russia) during 105 days (24.05.2017–06.09.2017) at 24˚С). Methodology. Distilled water (50 ml) or the same volume of NaCl, Na2SO4, FeCl3, Fe2(SO4)3 solutions with concentrations of 0.3, 0.5, 0.7 and 1% were added to 2 g of air-dried birch litter (leaves). The litter was placed into 100 ml plastic cups. The salt concentration in solutions was chosen according to the soil salinity gradation, i.e. 0.3% as weak (0.2–0.4%), 0,5% as medium (0.4–0.6%), 0,7% as strong (0.6–0.8%), and 1% as solonchak (Classification…, 1977). After 24 hours surplus water or salt solutions were decanted and filtered, and the birch litter was air-dried. After that 5 ml soil-water suspension (soil:distilled water 1: 2.5 m/v) was added into half of the cups with litter, whereas another half of cups with litter received 5 ml of distilled water. The variant with litter and no water was also included, designated as “dry birch litter”. The cups with litter were closed up and incubated during 105 days in the thermostat (+24 °С) with periodic ventilation. After incubation the litter was air-dried and weighed. The litter mass loss after decomposition was calculated as a difference between a sample mass at the beginning and at the end of the experiment and expressed as percentage. Concentrations of Na, Fe, K, Ca, Mg, Zn, Cu, Ni were determined by atomic-absorption spectrophotometry (AAnalyst 400, Perkin Elmer Inc., USA) in water samples, 0,3–1% salt solutions and birch litter. The total number of cups with litter in the experiment was 150. The term «under leaching» refers to the decrease in chemical element concentration in the litter after incubation with water. The term «under salinization» refers to the increase of Na or Fe concentrations in the litter after incubation with salt solutions. The litter mass loss presented as air-dry mass, concentration of chemical elements in the litter and ash content are expressed on the oven- dry mass basis. Results. Under leaching the concentration of chemical elements was increased in water extracts (especially К, Са, Mg) and decreased in birch litter in the row: Na (3.6 times) –>К (2.4 times) –> Ni (1.9 times) –> Mg (1.4 times) –> Zn and Cu (1.3 times). In comparison with water, the interaction between litter and Na and Fe salt solutions (concentrations 0.3–1%) led to intensive leaching and, correspondingly, to the 1.3 times lower litter К content, as well as 1.2–1.5 times and 1.5-2.2 times lower Са and Mg content, respectively. The highest concentration of Са, Mg, Zn, Cu, Ni was detected in FeCl3 solutions at the start of the experiment. The maximal mass and ash content losses were detected in the dry birch litter. On average, leaching was found to decrease 1.4 times mass loss and ash content in the litter. The minimal mass and ash content losses under salinization were found after litter incubation with FeCl3 (0.3–1%) solutions. The difference in mass loss between variants litter-water and litter-soil water suspension was not detected, although litter ash content after addition of soil water suspension was 1.1–1.3 times higher. Conclusions. The interaction birch litter with water and Na and Fe salt solutions (0,3-1%) led to modification of elemental chemical composition of plant litter as a result of leaching of chemical elements (especially К, Са, Mg) from litter and increased concentrations of Na, Fe and some other elements (depending on the salt used). It led to the decrease in plant litter decomposition rate, which under the natural conditions in the south of West Siberia can take place as a result of temporary overwetting of the forest litter (for instance, in autumn or spring) as well as in areas occupied by saline soils.


Author(s):  
I. I. Boiko ◽  
V. O. Hryshchenko ◽  
T. P. Novikova ◽  
O. P. Shevchenko

Purpose. Determine the content of dry mass and ash in the leaves and stems of bioenergy crops (miscanthus, switchgrass, willow). Methods. Samples were taken at the end of the growing season (October). The dry matter content was determined by thermogravimetric method, ash content by burning in a muffle furnace. Results. The dry matter content of the leaves varied depending on the year of research and crop. Thus, on average over the years of research, this figure was highest in switchgrass and willow, 65.8–66.0% with an ash content of 4.3–4.5%. The content of dry mass in miscanthus leaves was 9–10% lower compared to other energy crops. The ash content was at the level of 2.8% or 1.5–1.6 times. Physico-chemical parameters of the leaves of energy crops have changed since one year of the study. In miscanthus leaves it varied from 59.9 to 60.2%, switchgrass from 54.5 to 76.9%, and willow from 60.7 to 72.2%. The ash content varied in a smaller range of all energy crops. In the stems of miscanthus, the dry matter content was in the range from 57.5% to 58.9%, in switchgrass it was the largest, from 54.9 to 65.3%, and in the stems of willow from 51.3 to 57.1% over the years of research. The stems of all energy crops had a lower ash content compared to the leaves. Thus, this indicator in miscanthus leaves was at the level of 1.5–1.6%, switchgrass 1.3–2.2%, willow 2.0–2.5% (1.5–3.0 times). Conclusions. The content of dry mass and ash in the leaves and stems varies depending on the type of energy crop. The highest content of dry mass is formed in the leaves of switchgrass (54.5–76.9%) and willow 60.7–72.2%. The ash content is 4.1–4.9% and 4.0–4.5%, respectively. The content of dry mass in miscanthus stems is 57.5–58.9%, switchgrass 54.9–65.3%, willow 51.3–57.1%. The content of ash in the stems of miscanthus is 1.5–1.6%, switchgrass 1.3–2.2, willow 2.0–2.5% or 1.5–3.0 times.


Agronomy ◽  
2021 ◽  
Vol 11 (4) ◽  
pp. 786
Author(s):  
Waldemar Helios

Fertilization of willow with nitrogen is an important issue with economic and environmental implications. The study was aimed at determining the effect of nitrogen fertilization and white clover on weed infestation, morphology, biomass and chemical composition of willow. A field experiment was established at Wroclaw University of Environmental and Life Sciences (Poland) during the years 2013–2017 with the use of a randomized complete block design (RCBD). The results showed that the number and dry mass of weeds per m2, the number of willow shoots and the fresh weight yield of willow were smaller where the clover was sown. The plants were found to be higher after applying nitrogen fertilization. The dry mass yield and shoot diameter did not depend on the cultivation method. Nitrogen fertilization increased the ash content. Undersowing willow with white clover, higher nitrogen content was found. Nitrogen fertilization increased the content of ash, and in undersowing cultivation, the willow stems had higher nitrogen content than in monoculture. On average, the phloem had 5.6 times higher crude ash content and 4.6 times higher nitrogen content than wood. On the basis of the conducted research, it can be concluded that in the first years after planting, the undersowing growing of willow with white clover can be an alternative to plantations fertilized and non-fertilized with nitrogen.


Author(s):  
R.D. Leapman ◽  
S.Q. Sun ◽  
S-L. Shi ◽  
R.A. Buchanan ◽  
S.B. Andrews

Recent advances in rapid-freezing and cryosectioning techniques coupled with use of the quantitative signals available in the scanning transmission electron microscope (STEM) can provide us with new methods for determining the water distributions of subcellular compartments. The water content is an important physiological quantity that reflects how fluid and electrolytes are regulated in the cell; it is also required to convert dry weight concentrations of ions obtained from x-ray microanalysis into the more relevant molar ionic concentrations. Here we compare the information about water concentrations from both elastic (annular dark-field) and inelastic (electron energy loss) scattering measurements.In order to utilize the elastic signal it is first necessary to increase contrast by removing the water from the cryosection. After dehydration the tissue can be digitally imaged under low-dose conditions, in the same way that STEM mass mapping of macromolecules is performed. The resulting pixel intensities are then converted into dry mass fractions by using an internal standard, e.g., the mean intensity of the whole image may be taken as representative of the bulk water content of the tissue.


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