Maataloustieteellinen Aikakauskirja Vol. 56: 89—95, 1984 ELISA reagents for potato virus Y strains with significantly low non-specific reactions AARNE KURPPA Department of Plant Pathology, University of Helsinki, SF-00710 HELSINKI 71, Finland KIRSI KORHONEN Labsystems Ltd, Puit title 8-11, SF-00810 HELSINKI 81. Finland Abstract. High titered and highly virus-specific antisera to selected PVY0 and PVY" an- tigens and their mixture were produced in rabbits. Immunoglobulins purified from the anti- sera with the protein A method and their enzyme conjugates had very strong virus-specific but no non-specific reactions in the ELISA test. Their homologousreactions to the antigens were stronger than heterologous but any PVY isolate could be identified in a potato leaf sample with the dilutions between 10~2 and 10~3 and in a sample from sprouted tubers with second- ary infection diluted between 10~' and 10~2 . Introduction The ELISA test (Enzyme-linked immuno- sorbent assay) (Clark & Adams 1977) is now routinely used in many countries for potato virus identification. The main advantage of the test is its ability to identify potato leaf roll virus (PLRV) (Casper 1977) and most other viruses in tuber sap (de Bokx et al. 1980, Daniel & Hunnius 1980, Banttari & Frank 1982). The problems in the test caused by too high specificity or distinct virus strains have been reported by Maat and de Bokx (1978), Liu and Duffus (1982) and Kurppa (1983). Non-specific reactions in the ELISA test have been widely found particularly when vi- ruses are identified in potato tubers. Non- specific absorbance values from healthy tu- bers have varied depending on the cultivar tested and the physiological stage of the tu- ber (de Bokx et al. 1980, Tamada & Harri- son 1980). The aim of this study was to pre- pare polyclonal immunoglobulin reagents to potato virus Y strains Y° and Y" to be used in the ELISA method with high virus-speci- Index words: virus identification, ELISA test, potato viruses, PVY strains 89 JOURNAL OF AGRICULTURAL SCIENCE IN FINLAND https://www.c-info.fi/en/info/?token=ysxYRHjpcrUuGo50.s5BBwKU9NteAF3vKhkZUlw.2r8IM0_6ip8E0xupAC-agzy_Z-JFua3pfbPP1WmLJiY1K1Ey5iu6fV5jqBRWP2Jof4PvbPS6JQuQGqlZx8kQ6ll7W_aoriuwJ26nzSz2zeMGTfWG1Tyw9SObJ7Br3p1GpghMclEH_A-ZmdoNdGKljU1FY1uahnIUBlY https://www.c-info.fi/en/info/?token=r7nNTbBKJj9mzQ1Z.OD1HKBpf4-wntaXwsQ0auw.lRBZieD1byD4f8RV-1F3Vi-w6uQsxNGt_ooVQDxUt58jyQNrLQxQrQ3LPNybCeqSu6TwQjvuKstvl_NMDFL3o9YEUooQPkfCpRoLuhad8-xbGllG2NiL_O-UI3pptN5EeDPMQ8scl0WeAbOJHbAVoj5tdha7dn9-6agv3gnmgfzd98OFI9694Rm7 ficity but without too high strain or isolate specificity. Materials and methods The antigens for the study were selected according to the previous study of PVY di- versity in Finland by Kurppa (1983). The se- lected isolates of PVY° and PVY n strains were serologically more related to the hetero- logous strain than which is normal. Also a purified mixture (1 : 1) of the antigens was used as an immunogen in antiserum produc- tion. The antigen of the PVY 0 strain was puri- fied from the leaves of Nicotiana glutinosa and the antigen of PVY" strain from the leaves of N. tabacum cv. Samsun with sys- temic infection. The purification method of Leiser & Richter (1978) was used with mi- nor modifications. The antigens were finally purified in the density gradient centrifuga- tion in 5—35 *Vo (w/v) of sucrose just before they were needed for the immunization into the rabbits. The rabbits were immunized with subcu- taneous injections of 200 /eg of virus in 500 /d buffer mixed with equal volume of Freund’s adjuvant. Complete adjuvant was used for the first injection and incomplete for the following injections. The procedure for immunization and the titers of the anti- sera are presented in the table 1. Antiserum collection was started four weeks from the first injection and after that the rabbits were bled at about 2—3 weeks in- tervals. 20—30 ml of blood was taken at each bleeding. The titers of the antisera were determined with the microprecipitin test against purified virus preparates and with the agglutination test against healthy and infected tobacco sap. The properties of the antisera for the prepa- ration of reagents for the ELISA test were determined several times during the antise- rum production procedure. Total immuno- globulin fractions were separated from the antisera using protein A-Sepharose CL 4B and Sephadex G-25 gels and FRAG-300, UV-Z and REC-2 chromatographic equip- ments (Pharmasia, Sweden). The enzyme conjugates were prepared as described by Clark & Adams (1977). For the ELISA test EIA-Grade Cuvette blocks (Labsystems Ltd, Helsinki) and Microstrip® plates (Eflab, Helsinki) were used. For the readings of test results thephotom- eters (FP-9 and Titertek Multiscan, Eflab) were calibrated either using distilled water to show all possible non-specificity in the tests or using fresh substrate solution to obtain a comparable 0-standard for the routine test readings. The virus-specific reaction was cal- culated as an absorbance ratio of virus in- fected and healthy test samples (see Kurppa 1983). The value of each reagent was widely tested in routine tests of healthy potato tuber and leaf samples and similar samples in- fected with known PVY isolates. Also field material of several potato cultivars were tested. Table 1. Injection and sampling schedules, and homologous titers of the antisera as determined with the micropre- cipitin test. I = injection Time in weeks and the titers Antigen 0 12 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 PVY° 1/1024 1/2048 1/4096 1/4096 1/4096 1/4096 1/4096 t I t t 1 PVY" 1/2048 1/4096 1/8192 1/8192 1/8192 1/8192 1/4096 It It I PVY0 *" 1/1024 1/2048 1/2048 1/4096 1/8192 1/4096 1/4096 t I It t 90 Table 2. The homologous titration absorbances for three PVY reagents in the ELISA test. The immunoglobulins used tor the test reagents were purified from antisera taken eight weeks from the first injection into the rabbits. Dilutions of infected and healthy tobacco (N. labacum cv. Samsun) leaf sap wereused as test samples and sample buffer as a control. Substrate incubation was carried out 1 h at 22°C and the photometer was calibrated using distilled water. Absorbance at 405 nm Coating dilution/conjugate dilution Reagent and test sample 2 " g/ml ' " g/ml °' 5 " g/ml PVY 0 1/200 1/400 1/800 1/1600 1/200 1/400 1/800 1/1600 1/200 1/400 1/800 1/1600 PVY» tobacco 10-' 5.136 4.836 2.883 1.553 4.543 4.688 2.892 1.497 3.808 2.731 1.864 .747 —»— 10- 2 3.195 2.502 2.026 .671 2.839 2.378 1.916 .494 2.310 1.823 1.547 .363 Healthy—»— 10-' .345 .227 .168 .103 .333 .172 .126 .093 .338 .276 .151 .097 Sample buffer .504 .338 .187 .122 .454 .241 .156 .123 .500 .401 .320 .129 PVY" PVY" tobacco 10-' 5.300 5.300 4.872 3.224 5.230 4.764 4.124 2.284 3.648 3.114 1.916 1.238 —»— 10-2 3.408 2.461 1.812 1.176 3.448 2.678 1.970 1.180 2.324 2.076 1.367 .843 Healthy—»— 10-' .158 .141 .091 .093 .163 .101 .094 .092 .176 .186 .115 .087 Sample buffer .239 .160 .115 .096 .149 .115 .107 .085 .181 .171 .117 .091 PVY 0 + " pyy»+ " tobacco 10-' 4.052 5.301 5.280 4.584 4.848 4.840 4.163 3.625 4.315 4.044 3.983 2.984 —»— 10-2 4.173 5.290 4.500 3.590 4.200 5.166 4.667 3.257 4.826 3.987 3.823 2.638 Healthy—»— 10" 1 .257 .196 .152 .100 .248 .166 .124 .104 .254 .233 .149 .104 Sample buffer .321 .261 .166 .121 .355 .177 .138 .118 .423 .259 .183 .132 Table 3. Homologous and heterologous reaction absorbances for three PVY reagents in the ELISA test when potato and tobacco leaf samples infected with various isolates of Y° and Yn strains weretested. Plate coating and conjugate dilution was c. 1 Ig/ml and the substrate incubation time was30 min at 22°C. The figures show the meanabsorbance values for 3x5 samples. For photometer calibration distilled water wasused. Sample and the absorbance at 405 nm Potato leaf sap Tobacco leaf sap Healthy controls R nt PVY" PVY" PVY» PVY" potato tobacco sample 10-' 10~ 2 10-' 10~2 10-' 10-2 10-' 10-2 10_1 10 ~' buffer PVY° .725 1.773 1.813 2.000 .999 1.446 1.279 1.991 .077 .081 .084 PVY" 1.673 1.437 >2.000 >2.000 >2.000 1.749 >2.000 >2.000 .055 .058 .070 PVY° + " 1.212 1.612 1.860 >2.000 >2.000 1.863 >2.000 >2.000 .064 .066 .078 91 92 Results The titers of the antisera produced reached high level within four weeks from the first in- jection. All homologous titers were 1/1024 and heterologous 1/512 or higher when de- termined with the microprecipitin test or with the agglutination test. No reaction to host protein was detected. The titers rose further during the following weeks and the values of 1/8192 or 1/4096, respectively, were reached. The titers of the antisera re- mained high for several weeks after injec- tions (Table 1) and the non-specific reaction to plant sap remained significantly low dur- ing the following weeks of the immunization program. In addition the purified immunoglobulin fractions (Ig) and their enzyme conjugates (Elg) showed high virus-specificity in the ELISA test when suitable dilutions were used. Almost no reaction was found to the host species from which the antigens for the antiserum production were purified and the absorbance values in the tests often remained lower than those for sample buffer (Table 2). All Ig dilutions (2, 1 and 0.5 fig of Ig/ml and Elg dilutions (1/200, 1/400 and 1/800) in different combinations gave high absorbance values in the tests but the highest specificity was found when Ig concentration of 1 /ig/ml and Elg dilutions of 1/400 or 1/800 (c. 2.5 and 1.25 /ig Ig/ml) were used. Significant strain specificity was found when PVY strains were identified in tobacco and potato leaf sap with the ELISA test. However, the heterologous reactions ofall of the test reagents were strong (Table 3). The virus concentration of Yn strain samples proved to be higher than that of Y° strain samples and higher absorbance values were therefore read for the former in most cases. All reagents gave strong virus-specific reactions and no significant reaction to plant proteins was detected. If the photometer was calibrated using fresh substrate solution the absorbance values for healthy plant samples were equal to ± 0.000. In serial dilutions of potato leaf sap with secondary infection PVY could be reliably detected in a dilution of 10~2 or 10“ 3 (Fig. 1). The test reagents for the Y" strain were found to be extremely virus-specific and no significant background problems existed, even if substrate incubation times of several hours were used. Absorbance values were of- ten obtained for samples of 10~' dilution that were higher than for undiluted samples. In potato tuber samples with secondary in- fection PVY could be reliably detected in a Fig. I. Specific reaction ratios for PVY-ELISA-re- agents calculated from the absorbance values of undiluted and diluted PVY infected (A v ) and healthy undiluted samples (A h„). Substrate incubation was carried out for 30 min at 22°C. The photometer was calibrated using fresh substrate solution. • • • = Yn reagent =Y n samples O O o = Y° reagent = Y° samples + + + = Y° +" reagent dilution of 10~* or 10-2 (Fig. 2). Absorb- ance readings higher than 2.0 were often ob- tained for the samples with 10_l dilution when routine method with one hour’s sub- strate incubation time was used. No prob- lems arose from the low virus concentration or nonspecific reactions when presprouted tubers of several potato cultivars were tested. The variation in the absorbance values for different virus isolates tested in the tubers was smaller than if the viruses were tested in leaf samples. However, the absorbance val- ues for any healthy sample always remained low and no significant variation between comparable samples was found. Discussion The high virus-specificity in the antisera produced by low dosage injections into rab- bits agree with the results of Richter et al. (1979) and Clarke (1981). Also the titers of the antisera were high compared to the re- sults obtained with subcutaneous injections into rabbits. No significant disadvantages were found when using the total immunoglobulin fraction instead of the recommended 7-globulin frac- tion (Clark & Adams 1977) for the ELISA test. The selection of the known virus isolates for the antiserum production yielded antisera with the properties desired and the restricted strain or isolate specificity reported by Maat and de Bokx (1978) was avoided. The absorbance values obtained in the tests were primarily related to the virus concentration in the sample. The reason for the higher absorbance val- ues from the leaf samples after dilution com- pared with undiluted samples was possibly due to particle aggregation in the undiluted sap. In dense aggregates fewer serologically active determinants are free to react with the antibodies than in the solutions containing non aggregated particles in equal or even in lower concentrations. Similar phenomen have previously been reported (Kurppa 1983). The specific absorbance values calculated for the ELISA test reagents (specific immu- noglobulin and its conjugate) made of the antisera produced in this study were remark- ably higher than those calculated from the results of Maat and de Bokx (1978) and Daniel and Hunnius (1980). They were also higher than earlier reported by Kurppa (1983) or calculated from the readings ob- Fig. 2. Specific reaction ratios for PVY-ELISA-re- agents calculated from the absorbance values of undiluted and diluted potato tuber samples with secondary PVY infection (A v ) and healthy undiluted tuber samples (Aho). Subsfate incu- bation was carried out for 30 min at 22°C. The photometer was calibrated using fresh sub- strate solution. • • • = Yn reagent =Yn samples O O O = Y° reagent = Y° samples + + + = Y° + n reagent 93 tained with commercially available test rea- gents in this study. The monoclonal antibody preparates for the ELISA test have some obvious advantages over polyclonal preparates when used for specific purposes. In the identification of po- tato viruses, excluding PLRV, the desired re- action sensitivity and broad specificity to the strains and isolates is easily obtained if the virus antigens for the antiserum production are carefully studied and selected. The sero- logic suitability, high virus-specificity and the lack of non-specific reactions determine the value of an antiserum preparate. From this study it is clear that highly virus-specific but not too strain-specific polyclonal anti- bodies are desirable for the identification of potato viruses with the ELISA technique. For good results, carefully selected and puri- fied virus antigens are necessary and low dosage injections into rabbits are recom- mended. Acknowledgements: The financial support received from the Finnish Academy is gratefully acknowledged. References Banttari, E.E. & Franc, G.D. 1982. Enzyme-linked immunosorbent assay with single or combined antise- ra for viruses S and X in potato tubers and plants. Am. Potato J. 59: 375—387. Bokx, J.A. de, Piron, P.G. & Cother, E. 1980. Enzyme-linked immunosorbent assay (ELISA) for the detection of potato viruses S and M in potato tubers. Neth. J. PI. Path. 86: 285—290. Casper, R. 1977. Detection of potato leafroll virus in potato and in Physalis floridana by enzyme-linked im- munosorbent assay (ELISA). Phytopath. Z. 90: 364—368. Clark, M.F. & Adams, A.N. 1977. Characteristics of the micro-plate method of enzyme-linked immuno- sorbent assay for the detection of plant viruses. J. Gen. Virol. 34: 475—483. Clarke, R.G. 1981. Potato leafroll virus purification and antiserum preparation for enzyme-linked immu- nosorbent assays. Am. Potato 3. 58: 291 —298. Daniel, G. & Hunnius, W. 1980. Nachweis der Kartof- felviren M, S, X und Y in Pressäften sekundärinfizier- ten Kartoffelpflanzen mit ELISA (enzyme-linked im- munosorbent assay). Gesunde Pfl. 32: 118—127. Kurppa, A. 1983. Potato viruses in Finland and their identification. J. Scient. Agric. Soc. Finl. 55: 183—301. Leiser, R.-M. & Richter, J. 1978. Reinigung und einige Eigenschaften des Kartoffel-Y-Virus. Arch. Phyto- path. Pfl.schutz. 14: 337—350. Liu, H.-Y. & Duffus, J. 1982. The differentiation of distinct serotypes from potato leaf roll affected plants by enzyme-linked immunosorbent assay (ELISA). Am. Potato J. 59: 476. Maat, D.Z. & Bokx, J.A. de 1978. Enzyme-linked im- munosorbent assay (ELISA) for the detection of po- tato viruses A and Y in potato leaves and sprouts. Neth. J. PI. Path. 84: 167—174. Richter, J., Leiser, R.-M., Proll, E. & Döring, U. 1979. Versuche zur Differenzierung von Stämmen der Kartoffelviren X, S, M und Y an Hand ihrer Immu- nogenität. Arch. Phytopath. Pfl.schutz 15: 13—20. Tamada, T. & Harrison, B.D. 1980. Application of enzyme-linked immunosorbent assay to the detection of potato leafroll virus in potato tubers. Ann. Appi. Biol. 96: 67—78. Ms received December 13, 1983 94 SELOSTUS Luotettavasti toimivia vasta-ainereagensseja perunan Y-viruksen määrittämiseen ELlSA- menetelmän avulla Aarne Kurppa Helsingin yliopisto, kasvipatologian laitos, 00710 Helsinki 71 Kirsi Korhonen Labsystems Oy, Pulititte B—ll, 00810 Helsinki 81 Helsingin yliopiston kasvipatologian laitoksen ja Lab- systems Oy:n yhteistutkimuksena valmistettiin perunan Y-viruksen vasta-aineita ELISA-menetelmän (enzyme- linked immunosorbent assay) avulla tehtäviä rutiinimää- rityksiä varten. Vasta-aineiden avulla voitiin osoittaa luotettavasti erittäin alhaisia viruskonsentraatioita eri- laisista kasvinäytteistä, koska ne eivät reagoineet vastaa- viin terveisiin näytteisiin. Vasta-aineet valmistettiin maassamme eristetyille pe- rusteellisesti tutkituille Y-viruksen rotujen Y° ja Y" iso- laateille, joiden oli todettu reagoivan keskimääräistä voimakkaammin vieraan rodun vasta-aineisiin. Myös vi- rusrotuseokselle valmistettiin vasta-aine. Adjuvanttiin sekoitettu virusantigeeni injektoitiin ka- nien selkänähän alle. Menettely todettiin helpoksi ja koe-eläinten terveydentilan kannalta erittäin hyväksi. Vasta-aineseerumien tiitterit kohosivat korkeiksi (1/4096 —1/8192) pienistä 200 fig:n injektointiannoksis- ta huolimatta. ELISA-menetelmän määritysreagenssien valmistamiseen käytettiin 7-globuliinifraktion sijasta kokonaisimmunoglobuliinifraktiota, joka erotettiin raa- kaseerumista proteiini-A-menetelmää käyttäen. Reagensseilla voitiin täysin luotettavasti määrittää pe- runan Y-virus 10~2 tai 10~3 laimennetusta perunan leh- timehusta ja KM tai 10~2 laimennetusta hieman idäte- tyn mukulan mehusta. Perunalajike ei vaikuttanut mää- ritystulosten luotettavuuteen. Tutkimuksessa valmistetut testireagenssit toimivat luotettavammin kuin maassamme aikaisemmin valmiste- tut tai ulkomaiset myytävänä olevat vastaavat reagens- sit. Valmistetut uudet määritysvasta-aineet sopivat eri- tyisesti Suomen oloihin. 95