ON THE WATER-SOLUBILITY OF PLANT MINERALS Aarne Mäkelä With the technical assistance of Kaija Kotilainen Department of Animal Husbandry, University of Helsinki Received July 14, 1967 In plants the minerals appear in inorganic as well as in organic compounds. Among the inorganic compounds sodium-, potassium-, calcium- and magnesium- phosphates, - carbonates, - chlorides and - sulphates are common. Among the organic compounds the salts of organic acids, as for example malic-, oxalic-, acetic- and pectic acids, are common. In addition sulphur- and especially phosphoric acid is often found as esters. The occurrence of sulphur as a part of some amino acids is well known. Phosphorous compounds. Immediately after absorption phosphorus appears in plants as phosphates, but later on phosphoric acid is bound to organic compounds mainly in the form of esters (Baumeister 1958, p. 486). In green plants the inorganic P generally makes up the major part of the total amount of phosphorus. The portion is greatest in the leaves. In young leaves there are comparatively many organic phosphorous compounds, particularly nucleoproteins. Manuring with P increases almost exclusively the proportion of inorganic phosphorus (Mengel 1965, p. 263). Rediske and Biddulph (ref. Mengel 1965, p. 295) have observed the preci- pitation of femphosphates in the vascular bundles of plants. The first step in the assimilation of phosphorus seems to be phytic acid, which is encountered as a phosphorus reserve and as a starting-point for different phosphorous compounds. As a phosphorus reserve phytic acid appears as Ca - Mg - salt, i.e. as phytin, which is insoluble in water. Especially seeds and fruits contain much phytin (Baumeister 1958, p. 486). In addition it is encountered in almost all parts of the plants i.e. in the bulbs, the roots and the leaves. Of the salts of phytic acid only the alcalic salts are soluble in water (Dangschat 1955, p. 64). https://www.c-info.fi/en/info/?token=rx6cVennL9vQLuxF.qwXeGiRPR-Q0xn7RufjCpA.C8-uxIguR5D462MeQpe1WLvx2pL40dRWTjkioH4fUacOZI8hgSbCTD54gwTtOjRkdzFkHoo1jugwU8Z9UZzsaz3J6EDhZN4NqJ7m7Qwp-M-xwSy-dV4iXub5VfUqdG49WBPRKaq4zySTuNCYwK3sE7nlx8V_SwgQwChy6LWbEITHqGmZFqlhrQF61XK8Pr2sKIcw6ZfYcPaSOy6RgsHyRJwL4nx_0NlrBUvpgzagy9jthpZlgbE 167 Of the total phospohus in cereal grains some 80 % is bound to phytin. In green parts of plants, however, the proportion of phytin-P of the total phosphorus is only 2 % (Mengel 1965, p. 260). According to Webster (ref. Baumeister 1958, p. 486) the greatest part of the phosphorus in cereal grains is found in phytin and only a small part in lipids and inorganic P-compounds. The same observation has been made by Garz (1966, p. 148) concerning seeds of peas. According to Garz (1966, p. 139) phytic acid is encountered as water- soluble salts in seeds of peas. According to him the phytic acid of seeds of Legumi- «osae-plants is possibly partly bound to protein, a major part as K-salt or acid salt and only a minor part as Ca - Mg - salt. Of the total phytin in cotyledon meal of peas 88 % is soluble in cold water. Water-soluble phytate has also been encountered in wheat meal. Schmalfuss (1941) has observed that when the grains of maize ripen the inorganic phosphorus is transformed into phytin phosphorus. In the earliest growing stage of the grain the proportion of inorganic phosphorus is approximately 57 % and in the completely ripe grain the proportion of phytin - P is c. 75 % of the total phophorus. Plantphosphatides are mostly composed of lecithin. Water-soluble phosphatides have been separated from living plants. Maizel et al. (1956, p. 407) have observed large amounts, at least 5—20 % of the total phosphorus, of the phosphoric acid ester of choline in the sap of plants. The nucleic acids are especially im- portant phosphorus containing compounds that are encountered as prosthetic groups in proteins. The phosphoproteins are usually insoluble in water. Chlorine compounds. Plants absorb chlorine as Cl-ions and in this form it is also encountered in the cell tissues of the plant (Valmari 1938, p. 149). The amount of chlorine required by plants is usually very small. Chlorine promotes the growth of several plants, especially of those belonging to the Chenopodiaceae-ia.rm\y. Beta-roots, white beet, radish, spinach and celery are chlorophilic plants (Mengel 1965, p. 324). In some cases the dry matter may contain as much as 5 % chlorine (Humphries 1956, p. 487). Silicon compounds. Presumably the plants absorb silicic acid as hydro- silicate-ions, HSiO s ~ (Valmari 1938, p. 152). Silicic acid is usually stored in plants as amorphous pure Si0 2. Using roentgenographic methods a-quartz or opal (Sio2- nH 20) has been encountered in e.g. Helianthus annuus and Tnfo'ctm-plants (Heinen 1963, p. 5). Engel (ref. Heinen 1963, p. 6) has extracted galactose- silicate-ester from straws of rye, in which the molar proportion between galactose and silicone in the young material was 1: 1 and in the older material 1: 2. According to Heinen (1963, p. 6) also other carbohydrates (mucilage compounds) can occur instead of galactose. Silicon is always encountered in small amounts in pectin. Polymeric silicic acid has been found in cellulose (Silica-Cellulose). The solubility of silicic acid decreases as the degree of polymerization increases. Of the silicates only the alcalic silicates are soluble in water; the others are not (Heinen 1963, p. 7). Especially rich in silicon (Sio2) are horsetails {Equisetum), sedges ( Carex) and grasses ( Gramineae) (Collander 1960, p. 100). In pure ash of plants belonging to the Cyperaceae- and Equisetaceae-izxmlies up 168 to 70 % Si02 can been found (Heinen 1963, p. 4). Old plants contain more silicon than young ones (Mengel 1965, p. 322). Potassium compounds. Plants absorb potassium as K 4-ions and in this form it is also encountered in a majority of plants. In fruits, roots and young grass organic acids, as for example citric- and malic acid, are found, except as free acids, also as K-, Na- and Ca-salts. In the cotyledons of peas and beans a major part of the potassium is bound to phytic acid (Gartz 1966,p. 146). Potassium in plants is, even more thanmagnesium and calcium, found as free ions (Collander 1960,p. 101). Plants differ much less from each other with respect to their K- than for instance to their Ca- and Si-content (Strigel 1912, p. 357). It is believed that part of the potassium in plants is contained in ionizedform in the proteins of the cell, from where K can be extracted with water (Baumeister 1958, p. 504). K can easily be extracted from fresh cell tissue with water. K-compounds that are insoluble in water are rare (Humphries 1956, p. 483). For example with tomato- and maizeplants the complete solubility of potassium has been demonstrated. Potato tubers may, however, also contain potassium that is insoluble in water (Baumeister 1958, p. 504). According to Honda and Robertson (ref. Mengel 1965, p. 273) potassium is encountered in insoluble form in mitochondria. The largest amounts of potassium is encountered in young cell tissue rich in cytoplasm, especially in the growing point and in young leaves as well as in the storage regions of the plant, as for example in potato tubers. Sodium compounds. Plants absorb sodium as Na4 -ions and in this form it is maintained in the cell tissues. Sodium may form salts soluble in water with citric-, malic- and oxalic acid. The Na-content of plants varies considerably. Sodium philic plants, i.e. Beta-roots and spinach, contain 15—20 mg Na/g of dry matter, most plants 2—5 mg/g and sodium phobic plants less than 1 mg/g of dry matter (Mengel 1965, p. 279). Calcium compounds. Plants absorb calcium as Ca++ -ions, in which form it is also encountered in the cell tissues (Collander 1960, p. 101). Of the inorganic Ca-compounds there is plenty of calcium carbonate both in the protoplasm and the wall of the cell (Baumeister 1958, p. 517). According to Mengel (1965, p. 282) Ca-phosphates and Ca-oxalate exist beside Ca-carbonate in the vacuoles of the cell and as incrusting substances in the cell wall. Calcium sulphate is common in the sap of the cell (water solubility 0.2 %) whereas gypsum crystals are seldom encountered (Baumeister 1958, p. 517). Of the organic Ca-compounds calcium oxalate in crystal form is common in plants. Of the calcium in sugar beets, sugar beet tops and silage, sugar beet pulp and lucerne meal a considerable part is in the form of calcium oxalate (Brune and Bredehorn 1961, p. 214). According to Garz (1966, p. 141) it is possible that part of the calcium in seeds of beans occurs as oxalate and carbonate. The rhombic crystals of calcium tartrate have in some cases been encountered in plant material (Baumeister 1958, p. 517). Calcium pectate occurs in the middle lamella of the cells and in theprimary wall of the cell (Baumeister 1958, p. 517). The pectin of the middle lamella of the cells is insoluble in water being saturated with calcium. On the other hand the 169 monovalent compounds of calcium are readily soluble (Matson et al. 1951, p. 40). According to Paloheimo (1956, p. 27) the pectin content in the dry matter of sugar beet pulp is c. 50 % and that of young grass sometimes almost 20 %. Calcium may also form a salt with lecithin. The lecithins form salts soluble in lipides with the divalent- (Ca and Mg) ions. A considerable part of the calcium and magnesium in seeds of Leguminosae- plants is tied to protein and to pectin (Garz 1966, p. 143). Kostytschew and Berg (ref. Baumeister 1958, p. 516) have observed that of the total amount of calcium in the leaves of white clover ('Trifolium repens) 42.4 % is soluble in water and of potato stalks 16.5 %. The corresponding figures for seeds of peas and beans are c. 18 and c. 17 % respectively (Garz 1966, p. 143). According to him 54 and 40 % of the total amount of calcium is difficultly soluble (as carbonates and oxalate) in seeds of beans and peas respective- ly. According to Abutilow (ref. Baumeister 1958, p. 517) water-soluble calcium is primarily found in the topmost youngest parts of the plant, whereas calcium soluble in acid primarily is encountered in the lower parts of the plant. Magnesium compounds. Magnesium in plants is mostly encountered as free ions (Collander 1960, p. 101). Magnesium as a salt (Mg-oxalate, phytin) is free or sorptically bound as an ion or as a chelatic compound (Mengel 1965,p. 286). Magnesium occurs in the protoplasm of the cells both in inorganic and organic form (Humphries 1956, p. 477). The proportion of chlorophyllmagnesium is c. 20 % of the total amount of magnesium and is not much dependent on the magnesium supply (Popp 1936, p. 129, Michael 1941,p. 80). Hasler et al. (1966, p. 375) have, however, observed that when cultivated grass for cutting contains at least 0.2 % Mg in the dry matter, the proportion of magnesium bound to chlorophyll is only 10 % or less. A small part of the magnesium appears as a constituent of phytin and of the pectin in the cell wall and of several enzymes. Sometimes Mg-oxalate is encountered (Bau- meister 1958,p. 527). In addition Mg ++-ions are linked to the phosphate radicals of ribonucleic acid (RNA) (Hewitt 1963, p. 174). According to Garz (1966, p. 145) 58 and 86 % respectively of the magnesium of the seeds of peas and beans is soluble in water. In the cotyledons of these seeds a considerable part of the magnesium (as well as the potassium) is bound to phytic acid as a water soluble salt. According to Michael (ref. Baumeister 1958, p. 527) 60—85 % of the total amount of magnesium in leaves of maize is soluble in hot water. The proportion of the water soluble fraction of magnesium is independent of the magnesium supply. In plants magnesium is primarily found in leaves and seeds (Baumeister 1958, p.. 527, Humphries 1956, p. 477). Methods By incineration the crude ash can be determined. By subtracting carbon, sand and carbonic acid from the crude ash we get the pure ash (Hermann 1951, p. 25). The analysis of the ash does not give a true picture of the nature and quantities of the minerals of plants because the method of burning to eliminate the organic com- pounds changes the composition of many minerals. The ash is an artificial product 170 which does not as such form a part of the plant. Only a small part of the compounds included in the ash occurs as such in the plant (Paloheimo and Mäkelä 1966,p. 241). In addition to the total ash content the present investigation attempts also to deter- mine the valuable constituents (P, K, Ca and Mg) included in it. Special regard has been given to the water-soluble ash and the ash content of the water-soluble fraction of the plant and to the water-soluble portion of the aforementioned cations and phosphorus. In addition, the total amounts of crude protein, chloride and sodium have been determined. An attempt was made to determine the total ash content free from carbon (Paloheimo and Mäkelä 1966). The water-soluble ash was determined by burning 3—5 gof ground plant material in an electric oven for 3 y 2 hours at 550° C. The ash received in this way was washed into a 250 ml decanter glass with 60 ml of water, boiled 10 min. and filtered. The result of the weighing gives the amount of ash in soluble in water. When this is subtracted from the carbonfree total ash the result gives the water- soluble ash. The method used is similar to those of Pearson (1962, p. 21) and Joslyn (1950, p. 94). To determine the ash content of the water-soluble fraction ■of the plant. sgof the sample is put in an Erlenmeyer flask and 500 g destilled water and a magnet are added. With a magnetic stirrer the contents are slowly stirred without heating for 2 hours. Then the contents of the Erlenmeyer flask are filtered through a Buchner funnel containing a filter paper (Whatman No 2) the size of the bottom of the funnel. The precipitate including the filter paper is transferred to a big porcelain bowl, which thus contains the fraction of the plant insoluble in water plus the cations and anions insoluble in water. The filtrate on the other hand contains the water-soluble fraction of the plant plus its cations and anions. Both fractions of the sample are completely evaporated and burnt in an electric oven at 550° C for 3 % horns. In order to be able to determine the water-soluble fraction of the plant the ash contents of the insoluble fraction has to be weighed. The ash con- tent of the water-soluble fraction = carbonfree total ash the ash content of the insoluble fraction. The cation and phosphorus determinations are made both for the water-soluble and insoluble fractions. In this connection the sum of the soluble and insoluble cation and phosphorus amounts was observed to be approximately equal to the result obtained when the total amount was determined. The proportion of water-soluble cation and phosphorus has been expressed as a percentage of the sum of water-soluble and insoluble fraction. The total amounts of the cations K, Na, Ca and Mg as well as their water-soluble and insoluble portions were determined with a model DU Beckman flame spectrophotometer with photomultiplier attachment. The phosphorus determination was made according to Naumann (1962, p. 74). This method is approximately the same as those presented by Wiegner- Pallman (1938, p. 96) and Nehring (1960, p. 114). The protein deter- mination was carried out using the KjELDAHL-method. The chlorine determination was made according to Humphries (1956, p. 487). When preparing the samples, chopped plantmaterial was kept in a thermostat at 90—95° C for 24 hours and then finely ground. On the other hand slices of roots 171 and potato were held at 70° C for 24 hours in a vacuum drying apparatus where after they were finely ground. As each method of analysis was taken into use several determinations were run simultaneously. When the determinations have given approximately the same results only one sample has been used for the analysis. The plantmaterial for the investiga- tion of the mineral compounds was collected primarily from the University of Hel- sinki Experimental Farm Viik. The samples have been collected from the fields and edges of the farm from areas as free from dust as possible. Results and conclusions The results of the investigation are presented in tables 1, 2 and 3. They contain figures expressed as percentages of the dry matter of the respective compounds on the total ash, the water-soluble ash, the ash of the water-soluble fraction, the crude protein, P, Cl, K, Na, Ca and Mg. In the following when for example the water- soluble phosphorus and potassium is mentioned, it applies to that part of these elements, which is contained in the soluble fraction of the investigated sample. Correspondingly e.g. the water-solubility of phosphorus means a percentage ex- pressing how great an amount of the total phosphorus content is contained in the water-soluble fraction. On the other hand the water-soluble ash refers to the pro- portion of the ash that dissolves when ash is dissolved in water. The ash of the water- soluble fraction scarcely needs to be further explained. Excluding Cl and Na the water-solubility of the different elements is report- ed. The corresponding figure for Cl is not given because the total amount of Cl occurs in water-soluble form. The water-solubility of Na is not given because the results of the investigation in this respect proved to be quite uncertain, apparently due to the very small proportions in the examined samples. It may, however, be mentioned that the investigated samples contain much more water-soluble Na than insoluble Na. The proportions of crude protein have been included because they in some respects characterize the quality of the product. The water-soluble fraction of the ash and the useful minerals reflects the most valuable part of the minerals as for as animal and human nutrition is concerned. This fraction does not, however, contain all the valuable mineral elements of the food. Many minerals soluble in acid but not in water, e.g. di- and triphosphates of calcium and magne- sium, calcium- and magnesiumcarbonates, calciumoxalate and many organic esters of phosphoric acid, are important in nutrition. In addition, by determining the water-soluble fraction of the minerals, some information on the nature of mineral compounds is received. The investigated material represents a variety of quite diffe- rent groups of plant products. Consequently, it is understandable that common characteristics are rare. In the tables we find the following border values, with the respective border values of the water-solubility given in parantheses. 172 Table 1. Total ash, ash of the water- soluble fraction, and someash constituents in Gramineae- grassesas percentagesof dry matter. Total Water- Ash of the Crude Phosphorus Chlorine Potassium Sodium Calsium Magnesium P,ant ash soluble water- protein Total Percent. Total Total Percent. Total Total Per cent. Total Percent. ash soluble water- water- water- water- fraction soluble soluble soluble soluble Gramineae grasses: Timothy {Phleum pralense) early heading stage 6.08 4.63 3.83 8.67 0.23 70 0.67 1.61 99 0.37 66 0.07 83 blooming stage 5.83 4.56 3.49 8.59 0.25 80 0.90 1.86 99 0.30 54 0.13 61 straw 5-26 2.85 2.34 4.49 0,11 70 0.52 0.58 97 0.30 50 0.10 60 Cocksfoot (Dactylis glomerata) leaf stage 11.39 9.49 9.20 21.88 0.22 70 1.11 4.03 89 0.05 0.36 46 0.25 74 early heading stage 7.47 6.28 5.47 11.45 0.22 83 0,87 2,82 93 0.05 0.21 37 0.12 68 Meadow fescue (Festuca pratensis) leaf stage 9.81 7.11 7.66 28.99 0.36 78 1.31 3.57 93 0.04 0.45 53 0.14 72 early heading stage 6.72 5.09 4.99 11.45 0.25 77 0.93 2.47 88 0.03 0,31 49 0,12 68 Meadow grass (Poa pratensis) leaf stage 8.17 5.51 5.34 21.83 0.44 72 0.84 3.13 93 0.02 0.40 57 0.12 66 Couch-grass (Agropyrum repens) leaf stage 9.10 7.55 6.35 21.03 0.31 89 0.74 3.96 94 0.04 0.24 50 0.11 68 Meadow foxtail (Alopecurus pratensis) in beginning of blooming 7.43 6.06 4.91 13.54 0,24 72 0.70 3.19 93 0.03 0.18 45 0.11 58 Hair grass (Deschampsia caespitosa) early heading stage 7.12 4.94 3,17 17.09 0.23 80 0.53 2.48 93 0.02 0.19 50 0.11 62 Common reed (Phragmites communis) early panicle stage 9,27 5.64 4.81 16.58 0.27 69 0.87 3.37 93 0.09 0.13 57 0.09 78 173 Total ash 1.82-23.95 (0.35-16.39) Ash of the water- soluble fraction 0.24 11.79 Phosphorus 0.02- 1.11 (31-91 %) Chlorine 0.04 2.62 Potassium 0.20- 6.82 (54-99 %) Sodium 0.02 0.29 Calcium 0.05- 1.90 (4 -88 %) Magnesium 0.03 0.57 (9—83 %) In all investigated cases the water-solubility of K is greater than that of P. Ca and Mg. Excluding lichen and grain products, the water-solubility of K varies be- tween 82—99 % being in most cases over 90 %. The next in order after K. Na and Cl are phosphorus and magnesium, the solubility of which in all cases is less than that of K. With the exception of some grain products and lichen, the solubility of Ca is less than that of P. Gramine ae-grasses. The mineral contents of the most important grasses in Finland for cutting and pasture, are presented in Table 1. Timothy, cocksfoot, mead- ow fescue and meadow grass have grown on intensively manured fields, whereas the others are natural edge plants. Timothy, cocksfoot and meadow fescue have two or three growth stages. It can be seen that the total ash content decreases as the plant grows older. The proportion of ash of the water-soluble fraction as well as that of the water-soluble ash in the total ash, however, remain almost unchanged. When the plant grows older the crude protein content of the dry matter decreases considerably. The same is also true of the contents of P, K, Ca and Mg. Kerguelen (1960, p. 206) has observed that when the leaves of perennial Gramineae-grasses grow older their content of Si, Mg and Ca increases while the content of P, K and Na decreases. Gueguen and Fauconneau (1960, p. 157) have observed that later cuttings of cocksfoot grass at the same stage of growth contain more P, Ca, Na and Mg and less K. Generally the content of water-soluble ash of the total ash of grasses for cutting and pasture is 70—80 %, being however considerably less in reed and ripe timothy. The proportion of ash of the water-soluble fraction is usually somewhat less than that of the water-soluble ash. Seventy to eighty per cent, of the phosphorus is water- soluble. The water-soluble phosphorus is probably to a great extent in inorganic form (K- and Na-phosphates and Ca- and Mg-monophosphates); in addition they occur as alcalic salts of phytic acid and, originating from the photosynthesis, as sugar- phosphates and as intermediate products of this synthesis. A considerable amount of the insoluble phosphorus occurs as a Ca - Mg - salt of phytic acid, which is encountered in almost all parts of the plant, e.g. in the leaves. Almost all of the potassium is in water-soluble form, mostly as a K +-ion and also occurs sorptically linked with the proteins of the cell or with the water-soluble phytic acid. Only about one half of the calcium is in water-soluble form, probably as Ca++ -ions (i.e. as chlorides, monophosphate and bicarbonate). Even such a difficultly soluble Ca- compound as CaS0 4 (water solubility 0.2 %) occurs in plants in water-soluble form with the exception of a few rare cases. The insoluble Ca occurs partly in inorganic form i.e. as Ca-carbonate, Ca-phosphate and Ca-oxalate in the incrusting substances Table 2. Total ash, ash of the water- soluble fraction, and someash constituents in cereals and red clovers as percentages of dry matter. Total Water- Ash of the Crude Phosphorus Chlorine Potassium Sodium Calcium Magnesium Plant ash soluble water- protein Total Percent. Total Total Percent. Total Total Percent. Total Percent. ash soluble water- water- water- water- fraction soluble soluble soluble soluble Red clover: (Trifolium pratense) 1) leaf stage 9.62 4.77 4.75 23.63 0.30 81 0.46 2.45 92 0.07 1.62 49 0.42 75 a) leaves 9.03 3.76 3.73 27.14 0.32 80 0.50 1.99 91 0.06 1.82 50 0.41 75 b) stalks 11.14 7.37 7.39 14.61 0.24 82 0.35 3.63 92 0.08 1.10 45 0.46 75 2) blooming stage 6.91 3.82 4.52 14.14 0.14 77 0.36 2.67 90 0.02 1.00 31 0.19 53 a) flowers 6.30 3.44 3.87 21.21 0.31 72 0.31 2.51 90 0.02 0.54 14 0.26 45 b) leaves 9.21 4.31 6.01 21.43 0.13 79 0.23 2.79 92 0.02 1.90 41 0.25 66 c) upperhalf of stalks 7.13 4.79 4.89 8.57 0.10 79 0.62 3.23 88 0.01 0.76 20 0.18 48 d) lower half of staks 4.42 2.94 2.92 4.92 0.05 76 0.31 2.17 88 0.02 0.51 17 0.10 40 Cereals: Wheat grains 1.86 1.00 0.32 13.63 0.37 42 0.28 0.54 60 0.05 0.05 67 0.13 33 Oat grains 2.92 1.18 0.50 14.27 0.33 37 0.26 0.44 71 0.02 0.07 75 0.11 50 kernels 2.03 1.10 0.47 17.42 0.41 31 0.30 0.46 70 0.02 0.06 88 0.13 55 hulls 6.49 1.51 0.62 1.57 0.02 60 0.11 0.35 76 0.03 0.12 20 0.04 29 Brewers' grains 4.62 0.63 1.80 21.92 0.61 66 0.21 0.12 79 0.07 0.30 66 0.22 67 Wheat bran 5.83 3.53 1.98 16.95 1.11 37 0.04 1.49 60 0.04 0.05 35 0.48 24 Oat straw 5.14 3.39 3.26 2.52 0.09 76 0.75 2.14 90 0.13 0.34 36 0.10 53 Rye straw 3.39 1.34 0.61 2.10 0.11 81 0.21 0.77 91 0.02 0.23 32 0.05 54 Awns of barley 14.35 3.66 4.05 14.18 0.17 78 0.41 1.47 91 0.06 0.41 66 0.05 73 174 175 of the cell wall. A considerable, if not the greatest,part of the insoluble calcium occurs as calcium pectate of the middle lamella of the cells. Generally 60—70 % of the magnesium is water-soluble. The greatest part of the water-soluble magnesium occurs as Mg ++ -ions in the same compounds as the Ca ++-ion. Of the insoluble magnesium approximately one half is bound to the chloro- phyll. A part occurs as Mg-phytate and as Mg-pectate of the cell wall and sometimes also as Mg-oxalate. Red clover. The mineral contents of different parts of red clover at differ- ent growth stages are presented in Table 2. When the plant grows older the ash con- tent decreases considerably, the contents of water-soluble ash as well as that of the ash of the water-soluble fraction to a lesser degree. Similarly also the contents of crude protein, P, Na, Ca and Mg decrease considerably, even to one half, as the plant develops from the leaf stage to the blooming stage. On the other hand the Cl-content decreases only slightly and the content of potassium remains the same. Garz (1957, p. 218) has observed even more drastic decreases of N and P in lucerne and in the fractions (phosphatide- and nucleic- P and inorganic P) of phosphorus as the plant develops from a seedling of 10 cm to the blooming stage. The ash content of the stalks of red clover at the leaf stage as well as the contents of the water-soluble ash and the ash of the water-soluble fraction are considerably higher than those of the leaves. On the other hand the reverse is true at the blooming stage. Both at the leaf and blooming stage the contents of crude protein, P and Ca, of the leaves are consider- ably higher than those of the stalks; at the blooming stage this is true also for the content of Mg. On the other hand the content of potassium of the stalks is higher than that of the leaves. Gueguen (1959, p. 218) has obtained similar results with lucerne. With regard to the contents of Na and Cl, no district differences can be observed. The contents of ash, of the ash fractions as well as of P, K, Ca, Mg and Cl are 1 y2—2 times as high in the upper parts of the stalks than in the lower parts at the blooming stage. The content of Na at the blooming stage is small both in the leaves and the stalks. The contents of ash and Ca are lower but the content of P is higher in red clover flowers than in the leaves. The proportion of water-soluble ash of the total ash in red clover is both at the leaf and blooming stage only 50—55 %, i.e. smaller than the corresponding value for the Gramineae-grasses. Especially in the leaves the water-solubility of the ash is small, only slightly more than 40 %, while the corresponding value for the stalks is 70 %. The water-solubility of phosphorus, 70—80 %, is similar, and that of potassium almost the same, about 90 %, as for the Gram.ineae-gra.sses. According to Garz (1957, p. 218) in lucerne the proportion of inorganic P is about 2/3 of the total P during the whole of the growing period. As the inorganic P is a storage product, one may conclude that it occurs as easily soluble salts. This may also be true for red clover. The water-solubility of Ca and Mg, c. 50 and 75 % respectively, of red clover at the leaf stage, is the same and at the blooming stage (for Ca c. 30 % and for Mg c. 50 %) less than for the Gramineae-grasses. The water-solubility of Ca of red clover at the blooming stage is especially low, particularly in the flowers and stalks, only 15—20 %. Concluding from the fairly high contents of Ca- and Mg-compounds in- soluble in water, the proportions of Ca- and Mg-carbonate, Ca- and Mg-pectate, 176 possibly, also of Ca- and Mg-salts of lecithin, are encountered in much greater quantities than in the Gramineae- grasses. Gueguen (1949, p. 249) has observed that grasses and leguminous plants generally contain 0.3 and 1.6 % Ca respectively in the dry matter. On the other hand the contents of P, K and Na are about the same. Cereals. Table 2 furthermore gives the mineral contents of spring wheat and oat grains, some cereal products, and oat and rye straw. In the grains, wheat bran and straw the proportion of the water-soluble ash is considerably higher, generally about twice as high, as the ash content of the water-soluble fraction. This may be due to fact that part of the minerals which in the sample occur as water-insoluble compounds, appear in water-soluble form in the ash. The opposite seems to be true for brewers’ grains, the ash content of the latter proportion being about 3 times as high as of the former. The explanation why brewers’ grains still contain water-soluble minerals apparently is that they are contained in the juice. The grains contain fairly high, brewers’ grains and particularly wheat bran quite high, contents of phosphorus. The water-solubility of phosphorus is, however, only 40 %, except for brewers’ grains where it is higher. The P of the cereal grain is to a considerable part contained in phytin insoluble in water; according to Mengel (1965, p. 260) even 80 %. Concluding from the scarcity of calcium, all phytic acid is hardly phytin, but part occurs also as water-soluble K-phytate or as an acid salt of phytic acid which according to Garz (1966, p. 148) is common in seeds of plants belonging to the Leguminosae- famity. Phytin occurs particularly in the hull of the grain and in the aleuron layer (Dangschat 1955,p. 64) which explains the high content of P in wheatbran. The con- tents of K and Ca are especially low in cereal grains. The low content of calcium is due to its poor translocation in plants (Mengel 1965, p. 281). The water-solubility of K in cereal grains, as well as in brewers’grains and wheat bran, is only 60—80 %, which may be due to the incomplete extraction of K in cold water. The water-solubility of calcium in grains and brewers’ grains is fairly high, c. 70 %; therefore only a smallpart of calcium is bound to phytin. On the other hand only 35 % of the calcium in wheat bran is soluble in water. The water-solubility of magnesium in grains is only c. 50 % or less. It is especially low in wheat bran. The ash content of the hulls of oat grains is about 3 times as high as that of the core. On the other hand the quality of the ash as far as animal nutrition is concerned is inferior to that of the core. The awns of barley are to a certain extent similar to the hulls of oats with respect to their mineral content, the ash content of the awns is, however, considerably higher than that of the hulls. Regardless of the poor water- solubility of the ash of the awns their content of water-soluble ash is at least twice as high as that of the hulls of oat. The awns also contain more P, K, Ca and Cl than the hulls of oat. The straw of oat, excepting P, is richer in minerals than the straw of rye. At the time when the grains ripen the minerals are transferred from the straw to the grains, making the straw poor in minerals (Knowles and Watkin 1931, p. 616). Potat o, roots and tops. The mineral contents of potato, roots and tops are presented in Table 3. The ash content of potato tubers is low, but the water- solubility of the ash high, c. 90 %. They are especially deficient in calcium, containing c. 0.1 %. The ash content of swede roots and carrots is high and the water-solubility 177 of the ash c. 80 %; whereas the water-solubility of Ca and Mg is quite low. The mineral content and the water-solubility of the minerals of white cabbage is similar to that of roots. The ash contents of tops, spring rape and potato stalks are quite high, but the water-solubility of the ash is only about 60 %. The Ca content is very high, but the water-solubility of the Ca of sugar beet tops and potato stalks is quite low. According to Brune and Kudlich (1958, p. 1) sugar beet tops contain ample supplies of both oxalic acid and pectin appearing as Ca-compounds insoluble in water. The contents of Mg and Cl in sugar beet tops and potato stalks are especially high. Some other plants. Table 3 also contains figures on some plants belonging to various groups; they usually occur as weeds but also temporarily as food for animals. The dandelion ( Taraxacum officinale) is, with respect to its mineral content and the water-solubility of the ash and different minerals, similar to meadow fescue at the leaf stage. Only the water-solubility of Ca and Mg is much lower for the dan- delion. Compared with red clover at the leaf stage the dandelion has considerably less Ca and Mg but also much more K and Cl. With respect to the contents of ash and P the differences are negligible. Approximately the same results have been obtained by Strigel (1912, p. 357), when comparing the mineral contents of dan- delion and leguminous plants. Of the sedges only the results for Carex Goodenowii are presented in the table. It is similar to timothy at the blooming stage with respect to its mineral content; only the amount and water-solubility of phosphorus is less. The ash content of water horsetail (Equisetum fluviatile ) and of the leaf-stalks of common horsetail [E. arvense) is especially high, but the water-solubility of the ash is low, less than 50 %. The reason for the low water-solubility of the ash is probably due to the ample quantities of insoluble Si-compounds. The contents of water-soluble ash and of separate minerals in horsetails are approximately the same as in meadow fescue at the leaf stage, except that the horsetails, especially the water horsetail, contain more Ca and Mg. The water-solubility of Ca in the horsetails (23 — 27 %) is, however, much lower than in the meadow fescue. The ash content of chickweed (Stellaria media) is exceptionally high, c. 24 % in the dry matter. The water-solubility of the ash is 68 %. Among the cations the high K-content (c. 10% in the dry matter) is noticeable. The potassium is however far from being completely soluble in water. On account of the high K-content the alkalinity of the ash is exceptionally high, being equivalent to 12.5 % CaC0 3 in the dry matter, when the corresponding values for red clover and timothy coming into ear are 8 and 2.5 respectively. With respect to the contents and water-solubility of other minerals the chickweed does not deviate except that the water-solubility of Ca is exceptionally low (4 %). Cladonia alpestris is with respect to the mineral content the opposite to chick- weed. The ash content is only c. 2 % in the dry matter and at the same time the water-solubility of the ash is very low (19 %). Also the separate anions and cations are very scare and their water-solubility is poor. Table 3. Total ash, ash of the water- soluble fraction, and someash constituents in different plants and plant products as percentages of dry matter. Total Water- Ash of the Crude Phosphorus Chlorine Potassium Sodium Calcium Magnesium Plant ash soluble water- protein Total Per cent. Total Total Per cent. Total Total Per cent. Total Per cent. ash soluble water- water- water- water- fraction soluble soluble soluble soluble Potato, tubers 4.49 3.98 4.08 5.85 0.25 72 0.62 1.47 98 0.12 0.12 51 0.16 72 Swede, roots 7.14 5.49 5.76 7.92 0.33 91 0.96 2.56 98 0.35 24 0.09 9 Carrot, roots 9.98 8.34 7.91 9.88 0.29 85 1.02 1.89 95 0.52 28 0.24 37 White cabbage 6.57 4.49 5.20 11.37 0.36 77 0.26 1.00 98 0.47 37 0.14 67 Sugar beet, tops 15.41 9.62 9.97 15.98 0.26 85 2.67 2.82 99 1.66 5 0.41 66 Swede, tops 15.33 9.74 11,79 23.80 0.35 78 1.21 4.29 97 1.82 52 0.16 69 Spring rape, green plant 11.95 6.86 9.07 27.72 0.47 74 1.22 3.00 97 1.68 53 0.27 68 Potato, stalks 17.19 11.38 11.29 22.13 0.23 80 2.62 6.82 90 0.03 1.34 9 0.43 55 Dandelion (Taraxacum officinale) 10.89 7.95 8.02 17.90 0.31 74 0.89 4.87 90 0.02 0.53 29 0.20 37 leaves 13.42 9.60 9.81 21.73 0.32 72 0.89 5.69 91 0.03 0.72 23 0.24 39 stalks with flowers 8.48 6.39 6.32 14.26 0.31 76 0.89 4.09 89 0.02 0.35 34 0.17 36 Sedge (Carex Goodenowii) 5.64 3.45 3.43 11.93 0.12 59 0.70 2.04 92 0.02 0.50 49 0.13 66 Water horsetail (Equisetum fluviatile) 16.02 6.30 7.49 10.43 0.40 81 0.92 4.31 90 0.16 1.43 23 0.57 61 Common horsetail (Equisetum arvense) leafstalks 19.43 9.46 10.45 16.80 0.29 78 1.06 5.03 93 0.03 0.68 27 0.48 70 Chickweed (Stellaria media) 23.95 16.39 14.97 26.07 0.73 79 0.77 10.46 82 0.29 0.72 4 0.41 53 Lichen (Cladonia alpestris) 1.82 0.35 0.24 3.22 0.05 39 0.04 0.20 54 0.02 0.07 45 0.03 17 178 179 Summary This paper deals with ash and mineral contents essential in the nutrition of livestock and man. The results of the investigated products are presented in Tables I—3. Of the minerals the ash and the water-soluble part of it were determined, as well as the ash of the water-soluble fraction and the cations and anions P, Cl, K, Na, Ca and Mg. The determination of the water-solubility to some extent characterizes in what form the minerals occur in the plant. The following results were obtained in the determinations of the contents of total ash and the water-solubility. 1. As the Gramineae-grcLSses grow older the contents of ash and of individual minerals decrease, while the water-solubility simultaneously slightly declines (Table 1). The water-solubility of the ash and P is 70—80 %, that of K almost complete, that of Ca c. 50 % and that of Mg in general 60—70 %. 2. When red clover develops from the leaf stage to the blooming stage the contents of ash, N, P, Na, Ca and Mg decrease considerably, even to one half, while the content of K remains unchanged (Table 2). Simultaneously one can observe a decrease in the water-solubility. The water-solubility of the ash is 50—55 %, that of P 70—80 %, that of K almost complete, that of Ca 30—50 % and that of Mg 50—70 %. The contents of N, P and Ca in the leaves are considerably higher than in the stalks; at the blooming stage this is true also for Mg. On the other hand the content of K in the stalks is higher than in the leaves. The mineral content of the flowers is similar to that of the leaves, except that the content of ash is lower and that of phosphorus higher. 3. The water-solubility of the ash of cereal grains, cereal products and straws is 40—60 % (Table 2). The water-solubility of P in grains and wheat bran is c. 40 %, in brewers’ grains and straw 60—80 %. The water-solubility of K is only 60—80 %, except in straw where it is 90 %. The water-solubility of Ca in grains and brewers’ grains is c. 70 %, in the wheat bran and straw 30—40 %, in hulls of oats 20 % and awns of barley 66 %. The water-solubility of Mg in brewers’grains is almost 70%,. in oat grains and straw c. 50 %, in wheat grains and bran 20—30 %. 4. The water-solubility of the ash of roots and potato (Table 3) is high, 80— 90 %. The ash content of tops and potato stalks is quite high, but the water-solubility of the ash only approximately 60 %. The water-solubility ofP of the aforementioned plants and parts of plants is 70—90 % and that of K almost complete. The water- solubility of Ca in potato tubers, swede tops and spring rape is c. 50 %, where as it is low in other plants, especially in sugar beet tops and potato stalks. The water- solubility of Mg in potato tubers and tops is c. 70 %, whereas it is low in carrots,, potato stalks and especially in swede roots. 5. In Table 3 are furthermore presented the mineral contents of some plants belonging to various groups of plants which to a limited extent may be used by some animals. The dandelion (Taraxacum officinale) is quite similar to the meadow fescue at the leaf stage with respect to its mineral content and the water-solubility of various minerals. The common sedge {Carex Goodenowii) is with respect to its mineral content and the water-solubility of the minerals similar to the blooming timothy, except; that the amount and water-solubility of P is low. 180 The water-soluble ash and the contents and water-solubility of various minerals of water horsetail (Equisetum fluviatile ) and common horsetail [E. arvense) are approximately the same as those of the meadow fescue at the leaf stage, except that the contents of Ca and Mg are higher and the water-solubility of Ca considerably less. The ash content of chickweed ( Stellaria media ) (c. 24 % in the dry matter) and •of its specific minerals, the content of K (c. 10 %) is exceptionally high. On the other hand lichen (Cladonia alpestris) is especially poor in minerals. Acknowledgements. This investigations has been supported by a grant from August Johannes ja Aino Tiuran maatalouden tutkimussäätiö. I wish to acknowl- edge this grant with sincere gratitude. REFERENCES Baumeister, W. 1958. Hauptnährstoffe. Handb. Pfl. physiol. IV: 482 557. Berlin Gottingen Heidel- berg. Brune, H. & Bredehorn, H. 1961. ZurPhysiologic des bakteriellen Calciumoxalatabbaues und der Ver- wertungsmoglichkeit von Calcium aus Calciumoxalat beim Schwein. Z. Tierphysiol. Tierenähr. Futtermittelkunde 16: 214—236. —*— & Kudlich, 0.1958. Zur Calciumverwertung ausCalciumoxalat unter dem Einfluss von Pektin beim Wiederkauer. Ibid. 13: 1 13. Gollander, R. 1960. Kasvifysiologian alkeet. 278 p. Helsinki. Dangschat, G. 1955. Inosite und verwandte Naturstoffe. Moderne Methoden der PflanzenanalyseII: 64 94. Herausgegeben von K. Paech & M. V. Tracey. Berlin, Göttingen und Heidelberg. ■Garz, J. 1957. Zur Kenntnis der Phosphaternährung der Luzerne. Z. Pflanzenernähr. Diing. Boden- kunde 79: 213-232. —1966. Menge, Verteilung und Bindungsform der Mineralstoffe (P, K, Mg und Ca) in den Legu- minosensamen in Abhängigkeit von der Mineralstoffumlagerunginnerhalb der Pflanze und den Emährungsbedingungen. Kiilui Archiv 2, 80: 137—194. Gu£guen, L. 1959. Etude de la composition minerale de quelques especes fourragfcres. Influence du stade de developpement et du cycle de vegetaion. Ann. Inst. Nat. Rech. Agr. D. Ann. Zoot. 8; 245—268. —» & Fauconneau, G. 1960. Etude sur les variations des teneurs en matieres azoteeset en elements mineraux du dactyle. Ibid. 9: 157 179. Hasler, A. & Schleiniger, J. & Schnetzer, H. L. 1966. Beitrag zur Kenntnis des Magnesiumgehaltes schweizerischen Wiesenfutters. Schw. Landwirtsch. Forsch. 5: 375 392. Heinen, W. 1963. Siliciumverbindungen. Moderne Methoden der Pflanzenanalyse 6: 4 20. Begriindet von K. Paech & M. V. Tracey. Berlin, Göttingen und Heidelberg. Herrmann, R. 1951. Handbuch der lantwirtschaftlichen Versuchs- und Untersuchungsmethodik (Methoden Buch). 230 p. Radebeul und Berlin. Hewitt, E. J. 1963. The essential nutrient elements: requirements and interactions in plants. PI. Physiol. HI: 137 360. Edited by F. C. Steward. New York and London. Humphries, E. C. 1956. Mineral components and ash analysis. Modern methods of plant analysis I: 468 502. Edited by K. Paech & M. V. Tracey. Berlin, Göttingen and Heidelberg. Joslyn, M. A, 1950. Methods in food analysis. Applied to plant products. 525 p. New York 10, N. Y. Kerguelen, M. 1960. Aspects des variations de la composition de quelques fourrages en fonction des especes, des stades de vegetation, des conditions de soi et de ferilisation. Ann. L’amelioration des plantes 10: 177 236. 181 Knowles, F. & Watkin, J. E. 1931. The assimilation and translocation of plant nutrients in wheat during growth. J. Agr. Sci. 21: 612 637. Maizel, J. V. & Benson, A. A. & Tolbert, N. E. 1956. Identification of phosphorylcholine as an im- portant costituent of plant saps. PI. Physiol. 31: 407 408. Mattson, S. & Äkerberg, E. & Eriksson, E. & Koutler-Andersson, E. & Vahtras, K. 1951. Factors determining the composition and cookability of peas. Acta Agric. Scand. 1: 40 61. Mengel, K. 1965. Ernährung und Stoffwechsel der Pflanze. 378 p. Jena. Michael, G. 1941. Über die Aufnahme und Verteilung des Magnesiums und dessen Rolle in der höheren griinen Pflanze. Bodenkunde Pfl.nähr. 25: 65 120. Naumann, K. 1962. Entwicklung von Untersuchungsmethoden fur Futtermittel. Bestimmung von Phosphor in Futtermitteln. Kraftfutter 45: 74. Nehring, K. 1960. Agrikulturchemische Untersuchungsmethoden fiir Diinge- und Futtermittel, Böden und Milch. 310 p. Hamburg und Berlin. Paloheimo, L. 1956. Kotieläinhoidon perusteita. 619 p. Jyväskylä. — » — & Mäkelä, A. 1966. Tuhkamääritys rehuanalyysissä. Maatal, ja Koetoim. XX: 241 244. Pearson, D. 1962. The chemical analysis of foods. 464 p. London. Popp, M. 1936. Die Dungewirkung der Magnesia. Die Landwirtsch. Vers. Sta. 124: 129 152. Schmalfuss, K. 1941. Ober die Wandlungen der Phosphorverbindungen in der reifenden Maisfrucht, insonderheit bei verschiedener Ernährung der Pflanze. Bodenkunde Pfl.nähr. 20 (65): 151-177. Strigel, A. 1912. Vergleichende Untersuchungen: A. tJber Mineralstoffaufnahme verschiedener Pflan- zenarten aus ungedungten Boden, B, t)ber den Einfluss der botanischen Natur, der Herkunf und der Erntezeit auf die chemische Zusammensetzung von Wieseheu. Landw. J, buch 43; 349 371. Valmari, J. 1938. Maanviljelyskemian perusteita. 324 p. Porvoo Helsinki. Wiegner, G. & Pallman, H. 1938. Anleitung zum quantitativen agrikulturchemischen Praktikum. 389 p. Berlin. SELOSTUS: KASVIEN KIVENNÄISAINEIDEN VESILIUKOISUUDESTA Aarne Mäkelä Kotieläintieteen laitos, Helsingin yliopisto Tässä tutkimuksessa tarkastellaan kotieläinten ruokinnassa ja myös ihmisravitsemuksessa tär- keitten kasvien tuhka- ja kivennäispitoisuuksia. Tutkitut tuotteet nähdään taulukoista X 3. Kivennäis- aineista on määritetty tuhka ja sen vesiliukoinen osa, kasvin vesiliukoisen fraktion tuhka sekä kationit ja anionit P, Cl, K, Na, Ca ja Mg. Vesiliukoisuuden määrittäminen valaisee jossain määrin kivennäis- aineiden esiintymismuotoa kasveissa. Kivennäisaineiden totaali- ja vesiliukoisuuden määrän määrityksissä on päästy seuraaviin tulok- siin. 1. Gramineae - ruohojen vanhetessa tuhkan ja yksityisten kivennäisaineiden pitoisuudet laskevat samalla kuin myös kivennäisaineiden vesiliukoisuus hieman pienenee. Tuhkan ja P:n vesiliukoisuus on 70 80 %, K:n lähes täydellinen, Ca;n n. 60 % ja Mg:n yleisimmin 60 70 %. 2. Puna-apilan kehittyessä lehtiasteelta kukka-asteelle tuhka-, N-, P-, Na-, Ca- ja Mg-pitoisuudet laskevat huomattavasti, jopapuoleen, K-pitoisuuden pysyessä ennallaan. Samalla on havaittavissa vesi- liukoisuuden laskua. Tuhkan vesiliukoisuus on 50 —55 %, P:n 70 —BO %, K;n lähes täydellinen, Ca;n 30 —5O % ja Mg:n 50 70 %. Puna-apilan lehtien N-, P- ja Ca-pitoisuudet ovat huomattavasti korkeam- mat kuin varsien, kukka-asteella myös Mg-pitoisuus. Sensijaan varsien K-pitoisuus on korkeampi kuin 182 'ehtien. Kukkien kivennäispitoisuus muistuttaa lehtien kivennäispitoisuutta paitsi, että tuhkapitoisuus on alhaisempi ja fosforipitoisuus korkeampi. 3. Viljan jyvien, viljatuotteiden ja olkien tuhkan vesiliukoisuus on 40 —6O %. P:n vesiliukoisuus on jyvissä ja vehnänleseissä n. 40 %, mäskissä ja oljissa 60 —BO %. K:n vesiliukoisuus on vain 60 —BO %, paitsi oljilla 90 %. Ca:n vesiliukoisuus on jyvissä ja mäskissä n. 70 %, vehnän leseissä ja oljissa 30 —4O %, kauran kuorissa 20 % ja ohran vihneissä 66 %. Mg:n vesiliukoisuus on mäskissä lähes 70 %, kauran jyvissä ja oljissa n. 50 %, vehnän jyvissä ja leseissä 20 —3O %. 4. Juuresten ja perunan tuhkan vesiliukoisuus, on korkea, 80 —9O %. Naattien ja perunan varsien tuhkapitoisuus on sangen korkea, mutta tuhkan vesiliukoisuus on ainoastaan 60 %:n suuruusluokkaa. Edellämainittujen kasvien jakasvinosien P:n vesiliukoisuus on 70 —9O % ja K:n lähes täydellinen. Ca:n vesiliukoisuus on perunan mukuloissa, lantun naateissa ja kevätrapsissa n. 50 %, sensijaan muissa, erityisesti sokerijuurikkaan naateissa ja perunan varsissa alhainen. Mg:n vesiliukoisuus on perunan mukuloissa ja naateissa n. 70 %, sensijaan porkkanan juurissa, perunan varsissa ja erityisesti lantun juurissa alhainen. 5. Lisäksi on määritetty eräitten eläinten ravitsemuksessa vähäisessä määrin kysymykseen tule- vien, eri kasviryhmiin kuuluvien kasvien kivennäiskoostumus. Voikukka (Taraxacum officinale) muis- tuttaa kivennäiskoostumukseltaan sekä eri kivennäisaineiden vesiliukoisuudeltaan melko lailla nurmi- nadan lehtiastetta. Jokapaikan sara (Carex Goodenowii) muistuttaa kivennäiskoostumukseltaan jakiven- näisliukoisuudeltaan kukkivaa timoteitä paitsi, että P:n määrä ja vesiliukoisuus ovat alhaisia. Järvikortteen (Equisetumfluviatile) ja peltokortteen (E. arvense) vesiliukoinen tuhka ja eri kiven- näisaineiden määrät ja liukoisuudet ovat suunnilleen samansuuruiset kuin nurminadan lehtiasteen paitsi, että Ca- ja Mg-pitoisuus on korkeampi ja Ca:n vesiliukoisuus huomattavasti heikompi. Pihatähti- mön (Stellaria media) tuhkapitoisuus (n. 24 % kuiva-aineessa) ja yksityisistä kivennäisaineista K-pitoi- suus (n. 10 %) on ainutlaatuisen korkea. Sensijaan alppijäkälä ( Cladonia alpestris) on erityisenkivennäis- köyhä