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Файл:Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5579_Библиотеки_им_академика_М_И_Перельмана.pdf
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- •Foreword
- •Contributors
- •Preface
- •Contents
- •1. General Pharmacology
- •2. Pharmacology of Peripheral Nervous System
- •3. Pharmacology of Cardiovascular System
- •4. Drugs Acting on Urinary System
- •5. Drugs Acting on Respiratory System
- •6. Pharmacology of Central Nervous System
- •7. Chemotherapy
- •8. Autacoids and their Antagonists
- •9. Pharmacology of Drug Acting on theGastrointestinal Tract
- •10. Immunopharmacology
- •11. Vitamin and Minerals
- •12. Hormones
- •1. Introduction to Pharmacognosy
- •2. Sources and Classification of Crude Drugs
- •3. Factors Influencing Quality of Crude Drugs
- •4. Techniques in Microscopy
- •5. Introduction of Phytoconstituents
- •6. Glycosides
- •7. Alkaloids
- •8. Terpenoids, Volatile Oils and Resins
- •9. Principles of Plant Classification
- •10. Pharmaceutical Aids
- •11. Plant Products
- •12. Toxic Drugs
- •13. Poisonous Plants
- •14. Enzymes
- •15. Quantitative Microscopy
- •16. Biogenetic Pathways
- •17. Herbarium
- •18. Herbal Formulation
- •19. Plant Tissue Culture
- •20. Herbal Cosmetics
- •21. Herbal Formulation
- •1. Cellular Components
- •2. Carbohydrates
- •3. Proteins
- •4. Lipids
- •5. Vitamins
- •6. Biological Oxidation and Reduction
- •7. Enzymes
- •8. Nucleic Acids
- •9. Hereditary Diseases
- •1. Plant Cell
- •3. Fermentation
- •4. Recombinant DNA Technology
- •5. Proteomics
- •1. Introduction to Microbiology
- •2. Microscopy
- •3. Staining Methods
- •4. Biology of Microorganisms
- •5. Fungi and Viruses

PROTOCOL FOR HERBARIUM PREPARATION
Specimen
Photographs
Specimen
Name………………………………
Taxonomical Classification…………
Kingdom………….
Division……………
Class……………….
Order……………….
Family………………
Genus……………….
Species……………….
Details of Herbarium
Department of Botany…………………
Field Number……………………………….....
Specimen Name……………………………………
Common Name………………………………….
Place of Collection………………………
Month and Time of Collection………………
Description of Specimen………………
Specimen Collect By……………………..................
Date of Collection
Herbarium Prepared By:
Herbarium Authenticated By:
EXTRACTION AND ITS QUALITY ASSURANCE
Extractionistheseparationofmedicinallyactiveportionsof
plant(andanimal)tissuesusingselectivesolventsthrough
standard procedures. The extraction method separates
the soluble plant metabolites (chemical constituents) and
leavesbehindthe insoluble cellular marc.The products
obtainedfromplantsare relatively complexmixturesof
metabolites,inliquidorsemisolidstateor(afterremoving
Types of extraction techniques
thesolvent)indrypowderform,andareintendedfororal
or external use.
Galenicals(namedaftersecondcenturyGreekphysician
Galen)includeclassesofpreparationsknownasdecoctions,
infusions,uid extracts, tinctures,semisolid extracts or
powdered extracts.
Thepurpose of standardized extraction procedures
forcrude drugs (medicinal plant parts) is toattain
Section 2 Pharmacognosy
299

Extracts and its types
the therapeutically desired portions and to eliminate
unwantedmaterialbytreatmentwithaselectivesolvent
knownasmenstruum.Theextractthusobtained,after
standardisation, may be used as medicinal agent as
suchintheformoftincturesoruidextractsorfurther
processedtobeincorporatedinanydosageformsuch
as tablets and capsules. These products contain complex
mixtureofmany medicinalplantmetabolites,suchas
alkaloids,glycosides,terpenoids,avonoidsandlignans.
In order to be used as a modern drug, an extract may
befurther processed throughvarious techniques of
fractionationto isolate individual chemical entities
suchas vincristine, vinblastine, hyoscyamine, hyoscine,
pilocarpine,forskolinandcodeine.
Thebasicparametersinuencingthe quality of anextract
arethe plant parts used as starting material,the solvent
usedforextraction, themanufacturingprocess(extraction
technology)used with the type of equipment employed,
andthe crude-drug: extract ratio. The use of appropriate
extractiontechnology, plant material, manufacturing
equipment,extractionmethodandsolventandtheadherence
togoodmanufacturingpracticescertainlyhelptoproduce
a good quality extract. From laboratory scale to pilot scale,
all the conditions and parameters can be modelled using
processsimulationforsuccessfulindustrial-scaleproduction.
Apercolator is a narrow, cone-shapedvessel open at
both ends. The powdered crude drug is moistened with
anappropriateamountofthespecied menstruum and
allowedtostandforapproximately4hinawell-closed
container,afterwhichthemassispackedandthetopof
the percolator is closed. Additional menstruum is added
toformashallowlayerabovethemass,andthemixture
isallowedtomaceratein the closed percolator for24h.
Theoutletofthepercolatorthenisopenedandtheliquid
contained therein is allowed to drip slowly. Additional
menstruum is added as required, until the percolate
measuresabout three-quarters of the requiredvolume
ofthe nished product. The marc is thenpressed and
theexpressedliquidisaddedtothepercolate.Sufcient
menstruumisaddedtoproducetherequiredvolume,and
themixedliquidisclariedby ltration or by standing
followedbydecanting.
INFUSION
Freshinfusionsarepreparedbymaceratingthecrudedrug
forashortperiodoftimewithcoldorboilingwater.These
aredilutesolutionsofthereadilysolubleconstituentsof
crude drugs.
GENERAL METHODS OF EXTRACTION OF
MEDICINAL PLANTS
Maceration is a process in which powdered crude drug
(wholeorcoarselypowdered)isplacedwiththesolvent
in a stoppered container and allowed to stand at room
temperatureforaperiodofatleast3dayswithfrequent
agitationuntil the soluble matter has dissolved. The
mixture then is strained, the marc (the damp solid material)
ispressed, and the combined liquids are clarifiedby
ltrationordecantationafterstanding.
Section 2 Pharmacognosy
Percolationis the procedure used most frequently to
extractactiveingredientsinthepreparation of tinctures
300
anduidextracts.
Thegeneral principles andmechanisms involved in
maceration,percolationandinfusionfortheextractionof
thecrude drugsisgenerallyreferredtoasleaching.The
processesofleachingmayinvolvesimplephysicalsolution
or dissolution.
Theextractionproceduresareaffectedbyvariousfactors,
namely:
1. Rateoftransportofsolventintothemass.
2. Rateofsolubilisationofthesolubleconstituentsbythe
solvent.
3. Rate of transport ofsolution out of the insoluble
material.

Theextraction of crude drugs ismostly favoured by
increasingthesurfaceareaofthematerialtobeextracted
anddecreasingtheradialdistancestraversedbetweenthe
solids(crudedrugparticle).Masstransfertheorystatesthat
themaximumsurfaceareaisobtainedbysizereductions
whichentail reduction of material intoindividual cells.
However,thisisnotpossibleordesirableinmanycases
ofvegetablematerial.
earthenvessel,itshouldnotbenew:Watershouldrstbe
boiledinthevessel.Inlarge-scalemanufacture,wooden
vats,porcelainjarsormetalvessels are used in place of
earthenvessels.Someexamplesofsuchpreparationsare
Karpurasava, Kanakasava, Dasmularista. Some medicinal
preparationsof Ayurveda (likeAsava and Arista) adopt
thetechnique offermentation for extracting the active
principles.
DIGESTION
Digestionisaformofmacerationusedwhenmoderately
elevatedtemperatureisnotobjectionable.Itisdonewith
gentleheatingduringtheprocessofextraction.Thesolvent
efciencyofthemenstruumistherebyincreased.
DECOCTION
Decoctionis suitable for extracting water-soluble, heatstableconstituents.Thecrudedrugisboiledinaspecied
volumeofwaterforadenedtime;itisthencooledand
strainedorltered.Thisprocessisusedforpreparationof
Ayurvedicextractscalled“Quath” or “Kawath”.
Theprocedureforpreparationincludesstartingratioof
crudedrugtowaterisxed,e.g.1:4or1:16;thevolume
isthenbroughtdowntoone-fourthofitsoriginalvolume
by boiling during the extraction procedure. Then, the
concentrated extract isfiltered and used as suchor
processedfurther.
HOT CONTINUOUS EXTRACTION (SOXHLET)
Inthis method, thenely ground crude drug is placed
inaporousbagor“thimble”madeofstronglterpaper,
whichis placed in chamber of the Soxhletapparatus.
Theextractingsolventinaskisheated,anditsvapours
condense in condenser. The condensed extract drips into
the thimble containing the crude drug, and extracts it by
contact.When thelevelofliquidinchamberrisestothe
topofsiphontube,theliquidcontentsofchambersiphon
intoask.
This process is continuous and is carried out until a drop
ofsolvent from the siphon tubedoes not leaveresidue
whenevaporated.
Theadvantage is thatlarge amounts of drug can be
extractedwithamuchsmaller quantity of solvent. This
affectstremendouseconomyintermsoftime,energyand
consequentlynancialinputs.Atsmallscale,itisemployed
as a batch process only, but it becomes much more
economicalandviablewhenconvertedintoacontinuous
extraction procedure on medium or large scale.
AQUEOUS ALCOHOLIC EXTRACTION BY
FERMENTATION
Theextractionprocedureinvolvessoakingthecrudedrug,
inthe form of either a powder ora decoction (Kasaya),
foraspeciedperiodoftime,duringwhichitundergoes
fermentationandgeneratesalcoholin situ;thisfacilitates
theextractionoftheactiveconstituentscontainedinthe
plantmaterial.Thealcoholthusgeneratedalsoservesasa
preservative.Ifthefermentationistobecarriedoutinan
COUNTER-CURRENT EXTRACTION
Thewet raw material is pulverisedusing toothed disc
disintegratorstoproduceneslurry.Inthis process, the
materialtobeextractedismovedinonedirection(generally
inthe form of ne slurry)within a cylindrical extractor
whereit comes in contact withextraction solvent. The
furtherthestartingmaterialmoves,themoreconcentrated
the extract becomes. Complete extraction is thus possible
whenthequantitiesofsolventandmaterialandtheirow
ratesareoptimised.Theprocessishighlyefcient,requiring
littletime and posing no risk from hightemperature.
Finally,sufcientlyconcentratedextractcomesoutatone
endoftheextractorwhilethemarc(practicallyfreeofvisible
solvent)fallsoutfromtheotherend.
Thisextractionprocesshassignicantadvantages:
1. Aunitquantityoftheplantmaterialcanbeextracted
withmuchsmallervolumeofsolventascomparedto
other methods like maceration, decoction, percolation.
2. CCE is commonly done at room temperature, which
sparesthethermolabileconstituentsfromexposureto
heat which is employed in most other techniques.
3. Asthe pulverisation of the drug is done underwet
conditions, the heat generated during comminution is
neutralised by water. This again spares the thermolabile
constituentsfromexposuretoheat.
4. The extraction procedure has been rated to be more
efcientandeffectivethancontinuoushotextraction.
ULTRASOUND EXTRACTION (SONICATION)
The procedureinvolves the use of ultrasoundwith
frequencies ranging from20–2000 kHz; this increases
thepermeability ofcell walls and produces cavitation.
Althoughtheprocessisusefulinsomecases,likeextraction
ofrauwolaroot,itslarge-scaleapplicationislimiteddue
tothehighercosts.Onedisadvantageoftheprocedureis
theoccasionalbutknowndeleteriouseffectofultrasound
energy(>20kHz)ontheactiveconstituentsofmedicinal
plantsthroughformationoffreeradicalsandconsequently
undesirable changes in the drug molecules.
SUPERCRITICAL FLUID EXTRACTION
Supercriticaluidextraction(SFE)isanalternativesample
preparationmethodwithgeneralgoalsofreduceduseof
organicsolventsandincreased sample throughput. The
factorstoconsiderincludetemperature,pressure,sample
volume,analytecollection,modier(cosolvent)addition,
flowand pressure control, and restrictors.Generally,
cylindricalextractionvesselsareusedforSFEand their
performanceisgoodbeyondanydoubt.Thecollectionof
theextractedanalytefollowingSFEisanotherimportant
step:Signicantanalytelosscanoccurduring this step,
Section 2 Pharmacognosy
301

Extraction of herbal drugs
leadingthe analyst to believe thatthe actual efciency
waspoor. There are many advantages to theuse of
CO
asthe extracting uid.Inadditiontoitsfavourable
2
physicalproperties, carbon dioxide is inexpensive, safe
andabundant.Butwhilecarbondioxideisthepreferred
uidfor SFE, it possesses severalpolarity limitations.
Solventpolarityisimportantwhenextractingpolarsolutes
andwhenstronganalyte-matrixinteractionsarepresent.
Organic solvents are frequently added to the carbon
dioxideextractinguidtoalleviatethepolaritylimitations.
Oflate, instead of carbon dioxide, argon isbeing used
becauseitisinexpensiveandmoreinert.Thecomponent
recoveryratesgenerallyincreasewithincreasingpressure
ortemperature: The highest recovery rates in case of
argonareobtainedat500atmand150°C.Theextraction
procedurepossessesdistinctadvantages:(i)Theextraction
ofconstituentsatlowtemperature,whichstrictlyavoids
damagefrom heat and some organic solvents. (ii) No
solventresidues.(iii) Environmental friendlyextraction
procedure.Thelargestareaofgrowthinthedevelopment
ofSFEhasbeentherapidexpansionofitsapplications.SFE
ndsextensiveapplicationintheextractionofpesticides,
environmentalsamples, foods and fragrances, essential
oils, polymers and natural products.
PHYTONICS PROCESS
Anew solvent based on hydrouorocarbon-134a and a
new technology to optimise its remarkable properties in the
extractionofplantmaterialsoffersignicantenvironmental
advantagesandhealthandsafetybenetsovertraditional
processesfor the production of high quality natural
fragrantoils,avoursandbiologicalextracts.Advanced
Section 2 Pharmacognosy
PhytonicsLimitedhasdevelopedthispatentedtechnology
termed “phytonics process”. The products mostly extracted
302
bythisprocessarefragrantcomponents ofessentialoils
and biological or phytopharmacological extracts which
canbeuseddirectlywithoutfurtherphysicalorchemical
treatment.
Factors affecting choice of extraction procedure
Extract and factors affecting procedures
TECHNIQUES FOR DETECTION OF PHYTOCHEMICAL
GROUPS IN EXTRACTS
Carbohydrates
Molisch’s test:5 ml of sugar solutionwith 2 dropsof
Molisch’sreagent(10gα-naptholin100mlof95%alcohol)
mixandaddconcentratedsulphuricacidthroughsidesof
theslopingtest-tube,apurpleringformingattheinterface
betweentheacidandtestlayer.Thereactionformsform
ve/member/oxygencontainingrings,knownasfurfural,
furtherreacts with Molisch reagent to form coloured
compounds.

Benedict’s testassaysforthepresenceofreducingsugars.
Add1mlofthesolutiontobetestedto5mlofBenedict’s
solution(solutionofcoppersulphate,sodiumcarbonate,
and sodium citrate, pH 10.5), and shake test tube. Place
thetubeina boiling water bathandheatfor3minutes.
Removethe test tube from theheat and allow them to
cool.Formationofagreen,red,oryellowprecipitateisa
positivetestforreducingsugars.
Barfoed’s testisatestformonosaccharides.Add1mlofthe
solutiontobetestedto3mloffreshlypreparedBarfoed’s
reagent (copper acetate in dilute acetic acid, pH 4.6). Place
testtubesintoaboilingwaterbathandheatfor3minutes.
Coolit,formationofagreen,red,oryellowprecipitateis
apositivetestforreducingmonosaccharides.
Note:Donotheatthetubeslonger than 3 minutes, as a
positivetestcanbeobtainedwithdisaccharidesiftheyare
heated long enough.
Alkaloids
1. Mayer reagent: Solution I—dissolve1.36 g HgC
l2
in
60mlwater.SolutionII—dissolve5gKIin10mlwater.
Procedure—combine the two solutions and dilute with
waterto100ml.Addafewdropstoanacidiedextract
solution (diluted HCl or H
),and if alkaloids are
2SO4
present, a white to yellowish precipitate will appear.
Care should be taken not to agitate the test system,
becausetheprecipitatemayberedissolved.
2. Dragendorff reagent: SolutionI—dissolve8gbismuth
subnitrate [Bi (NO
. H2O]in30%w/vHNO3. Solution
3)3
II—dissolve27.2 g KI in 50ml water. Procedure—
combinethe solutions and let stand for 24 h,lter,
and dilute to 100 ml with deionised water. In acid
solutions,anorange-brownishprecipitatewillappear.
Thealkaloids may be recovered bytreatment with
Na
and subsequent extraction with diethyl ether.
2CO3
Thisreactionmayalsobeperformedonalterpaper
oronaTLCplatebyaddingadropofthereagentonto
aspotofthesample.
3. Wagner reagent: Solution—dissolve1.27gI
(sublimed)
2
and2gKIin20mlwater,andmake-upwithwaterto
100mL. Procedure—a brown precipitate in acidic
solutionssuggeststhepresenceofalkaloids.
4. Ammonium reineckate: Solution—Add 0.2 g
hydroxylaminetoasaturatedsolutionof4%ammonium
reineckate {NH
[Cr (NH3)2(SCN) 4].H2O},andacidify
4
with dilute HCl. Procedure—when added to extracts,
apinkprecipitatewillappearifalkaloidsarepresent.
The precipitate is soluble in 50% acetone, which may
alsobeusedforcompoundrecrystallisation.
Glycosides
Borntrager’s test for anthraquinone glycosides: Boil
thepowderwithdil.HCl,lter,cool,shakewithorganic
solvent,separateorganiclayer,shake with NH
OH, the
4
aqueous layer becomes rose pink or cherry red.
ModiedBorntrager’stest: Incase of dianthrone, e.g.
sennosoides—Boilthepowderwithalc.KOH,lter.Add
dil.HCltotheltrateandextractwithether.Oxidisewith
H
. Add NH4OH to the ethereal extract and shake, a rose
2O2
red colour is produced in the aqueous layer.
Keller Killiani test for cardiac glycosides:0.1 mg of
glycosideis dissolved ina mixture of1 ml of5% ferric
sulphateand99mlofglacialaceticacidandto this 1–2
dropofconc.H
isadded,itgivesbluecolourwithin
2SO4
2–3minconstitutesapositivetest.
Kedde’s test for cardiac glycosides:SamplewithKedde’s
reagent(3,5-dinitrobenzoic acid andNaOH gives violet
colour.
Baljet’s test for cardiac glycosides:Sampleand Baljet’s
reagent(picricacid+NaOH)givesorangeorred.
Flavonoids
Shinoda test toan alcoholicsolutionofthesample,add
magnesiumpowder and a few drops of concentrated
HCl.Flavones,avonols,thecorresponding2,3-dihydro
derivatives,and xanthones produceorange, pink, red
topurplecolourswiththistest.Byusingzincinsteadof
magnesium,onlyavanonolsgiveadeep-redtomagenta
colour;avanonesandavonolswillgive weak pink to
magenta colours or no colour at all.
Lipids
test (Salkowski): Dissolvesample in a little
H
2SO4
chloroformandaddequalvolumeofconc.sulphuricacid.
Aplayofcoloursfrombluish-redtocherry-redandpurple
isformedinthechloroform,whereastheacidassumesa
markedgreenuorescence.
Sterols
1. Liebermann-Burchardtest: Solution—combine 1 ml
acetic anhydride and 1 ml CHCl
add one drop concentrated H
,andcoolto0°C,and
3
. Procedure—When
2SO4
thesample is added, either in the solidform or in
solution in CHCl
, blue, green, red, or orange colours
3
thatchangewithtimewillindicateapositivereaction;
ablue-greenish colour in particular is observed for
sterols, with maximum intensity in 15–30 min. (This
testisalsoapplicableforcertainclassesofunsaturated
triterpenoids.)
2. Salkowski reaction: Procedure—dissolve1–2mgofthe
sample in 1 ml CHCl
and add 1 ml concentrated H2SO4,
3
formingtwophases,witharedcolourindicatingthe
presenceofsterols.
Saponins
Whenshaken,anaqueoussolutionofasaponincontaining
sampleproducesfoam,whichisstablefor15minormore.
Hemolysis test for saponins:Add sample to 1 dropof
horseblood on glass slide, observeunder microscope
hemolytic zone appear.
Other Polyphenols
Vegetabletanninsarelooselydenedbyacombinationof
structuralandfunctionalcharacteristicsaspolyphenolic
compounds that precipitate protein.
1. Ferric chloride: Dissolve5% (w/v) FeCl
in water or
3
EtOH.Addition of several drops ofthe solution to
anextract produces a blue, blue-black, or blue-green
colourreaction in the presence ofpolyphenols. This
isnot aspecicreagentfortannins,asotherphenolic
compoundswillalsogiveapositiveresult.
Section 2 Pharmacognosy
303

2. Gelatin-salt testforthedetectionoftanninsinsolution,
dissolve10mgofanextractin6mlofhot deionised,
distilledwater(lteringifnecessary),andthesolution
isdivided between three test tubes. To thefirst is
addeda1%solutionofNaCl,tothesecond is added
a 1% NaCl and 5% gelatin solution, and to the third is
added a FeCl3 solution.Formationofaprecipitateinthe
secondtreatmentsuggeststhepresenceoftannins,and
apositiveresponseafteradditionofFeCl3 to the third
portionsupportsthisinference.
Chromatography
Theterm chromatography refers to severalrelated
techniquesfor analysing, identifying, or separating
mixturesofcompounds.
Separationoftwosamplecomponentsinchromatography
isbasedontheirdifferentdistributionbetweentwonon-
miscible phases. In each technique, a sample mixture is
placedintoaliquidorgas,calledamobilephase,auid,
is streaming through the chromatographic system.
The mobile phase carries the sample through a solid
support, called the stationary phase, which contains an
adsorbent or another liquid.
Thedifferentcompoundsinthesamplemixturemove
throughthestationaryphaseat different rates, due to
differentattractionsforthemobileandstationaryphases.
In gas chromatography, the mobile phase is a gas, in
liquid chromatography it is a liquid.
Theory of Chromatography
1. Typical response obtained by chromatography (i.e. a
chromatogram):
where:
tR =Retentiontime
tM =Voidtime
Wb=Baselinewidthofthepeakintimeunits
Wh=Half-heightwidthofthepeakintimeunits
Theseparationofsolutesinchromatographydependson
twofactors:
1. Adifferenceintheretentionofsolutes(i.e.adifference
intheirtimeorvolumeofelution.
2. Asufcientlynarrowwidthofthesolutepeaks(i.e.good
efciencyfortheseparationsystem).
Solute Retention
Asolute’s retention time or retention volume in
chromatographyisdirectlyrelatedtothestrengthofthe
solute’sinteractionwiththemobileandstationaryphases.
Retentiononagiven column pertains to theparticulars
ofthatsystem:
1. Sizeofthecolumn
2. Flowrateofthemobilephase
Capacityfactor (k’): It is to measure of retention,
determinedfromtR or VR.
k’=(tR–tM)/tM
or
k’=(VR–VM)/VM
Capacityfactorisusefulforcomparingresultsobtained
ondifferent systemssince it isindependent on column
lengthandowrate.
Efficiency
Efciencyisrelatedtheoreticallytothevariouskinetic
processesthat are involved in solute retention and
transport in the column.
It is needed to determine the width or standard
deviation(s)ofpeaks.
Chromatographicseparations are a result of the
interactions between the analyte and the two phases. In
general,therearevetypesofinteractions.
1. Adsorption chromatography
2. Partition chromatography
3. Ion-exchangechromatography
4. Afnitychromatography
5. Size-exclusionchromatography.
Section 2 Pharmacognosy
304

Type of chromatography with their description
S. No. Type of chromatography Details Examples
1. Adsorption
chromatography
(also known as
displacement, liquid/
solid chromatography)
2. Partition
Chromatography
3. Ion-exchange
chromatography
4. Affinity chromatography In affinity chromatography, separations
Adsorption chromatography is an another
technique that uses a solid stationary
phase, the adsorbent, packed in a glass
column, and a solvent, the mobile phase,
that moves slowly through the packed
column. A solvent used as a mobile
phase is called an eluent. It is based on
interactions between the solute and fixed
active sites on the stationary phase.
The active sites of the stationary phase
interact with the functional groups of
the compounds to be separated by
noncovalent bonds, nonpolar interactions,
van der Waals forces, and hydrophobic
interactions.
Stationary phase: A solid adsorbent
packed in a column, spread on a plate, or
on a porous paper
Mobile phase: Usually, a liquid solvent.
It is a very useful technique because
it can resolve minute differences in
the solubility of the solutes. It is wellsuited for separating homologues and
isomers. The solute molecules interact
between two non-miscible liquid phases
according to their relative solubility. This
process is also referred to as liquid/liquid
chromatography
Stationary phase: A film of liquid that is
strongly adsorbed to an inert support
Mobile phase: A different liquid with a
different polarity
The ion-exchange chromatography
process allows the separation of ions and
polar molecules based on the electrical
properties of the molecules
Stationary phase: A resin or gel matrix
contains covalently bound positive
or negative functional groups : Cation
exchange column carries negatively
charged groups
Anion exchange column carries positively
charged groups
Mobile phase: A buffered aqueous
solution carries a counter-ion whose
charge is opposite and in equilibrium with
the total charge of the resin
are based on specific interactions
between interacting pairs of substance
such as a macromolecule and its
substrate, cofactor, allosteric effector, or
inhibitor.
Stationary phase: A gel matrix to which a
specific ligand is attached
Mobile phase: A buffered solution
Separation of alcohols from hydrocarbons
using silica gel, silanol groups on the gel
interacts with the polar functional groups
on the alcohols
Separation of polar compounds such as
amino acids, carbohydrates, and watersoluble plant pigments
Contd...
Section 2 Pharmacognosy
305

S. No. Type of chromatography Details Examples
5. Size-exclusion
chromatography
(known as gel filtration,
gel-permeation
chromatography,
and molecular sieve
chromatography)
In size-exclusion chromatography, no
chemical attraction or interaction occurs
between the solutes and the stationary
phase. The molecules are separated
according to their size. High molecular
weight molecules ranging between 2000
to 25,000,000 daltons can be separated
Stationary phase: A chemically inert
material such as a gel or a porous
inorganic solid. Common examples are
polyacrylamide polymers, porous glass or
porous silica beads
Mobile phase: Water or an aqueous
solution that solely serves as a carrier for
the analyte
Adsorption chromatography
Section 2 Pharmacognosy
306
Paper chromatography

1. Ion exchange chromatography begins
2. Adsorption phase
3. Startingofdesorption
4. Endofdesorption
5. Regeneration
Paper Chromatography
Principle
Theprincipleofseparationinpaperchromatographyis
partition chromatography. Analytes are separated based
onthe interactions between two non-miscible liquid
phasesaccordingtotheirrelativesolubility.
Themain difference of paper chromatographyis that
sheetofpaperisusedfortheinertphase.
The paper usually contains pure cellulose and no lignin,
copper,orotherimpuritiesandisavailableinstripsorin
sheets.Low-porositypaperwillproduceaslowrateof
movementofthesolventandthickpapershaveincreased
sample capacity.
Stationary phase: Water that is tightly bound to the
cellulosestructure and lls interspaces of the paper
bers.
Mobile phase:Anysolvent(alsoknownasadeveloping
solvent)thatispartiallymiscibleinwater.Choiceofthe
solventwilldependonthenatureofthesubstancesto
beseparated.Often,amixtureoftwoorthreesolvents
is required.
1. Capillary action:Themovementofliquid within the
spacesofaporousmaterialduetotheforcesofadhesion,
cohesion,and surface tension. The liquid is ableto
moveupthelterpaperbecauseitsattractiontoitself
isstrongerthantheforceofgravity.
2. Solubility: The degree to which a material (solute)
dissolvesintoasolvent.Solutesdissolveintosolvents
thathave similar properties. This allowsdifferent
solutesto be separatedby different combinationsof
solvents.Separationof components depends onboth
theirsolubilityinthemobilephaseandtheirdifferential
afnitytothemobilephaseandthestationaryphase.
Techniques Used in Paper Chromatography
Ascending technique: In a chromatographic chamber,
thesolventrisesupthepaper by capillary action and
allowsaseparationofthecomponentsasitascends.
Descending technique: In a chromatographic chamber,
apaperstripishangedverticallywiththespottedend
beup.Thesolventrisesupthewickanddescendsacross
the spot and down the paper. This technique permits a
separationoveralongerdistanceandallowsanincrease
in resolution.
Applications
1. Itisusedfordiagnosisofpresenceofaminoacidsin
urine.
2. Infoodindustry,paperchromatographyisusuallyused
forhighlypolarcompoundssuchassugars,aminoacids,
and natural pigments.
Theanalytes thatare highly water-solubleor have the
greaterhydrogen-bondingcapacitycanmovesloweralong
thepaper,while lesspolarcompoundswilltravelfaster
withthesolvent.
Thedegree of retention of acomponent is called the
retardationfactor(Rf).
Distancemigratedbyananalyte(Da)
(Rf)=
Distancemigratedbythesolvent(Ds)
Thin layer chromatography
Thestationaryphaseisathin layer of a solid such as
alumina or silica supported on an inert base such as
glass,aluminiumfoilorinsolubleplastic.
Thin layer chromatography
Section 2 Pharmacognosy
307

Themixtureis‘spotted’atthebottomoftheTLCplate
and allowed to dry.
Theplateisplacedinaclosedvesselcontainingsolvent
(themobilephase)sothattheliquidlevelisbelowthe
spot.
Thesolvent ascends the plate by capillary action,the
liquidllingthespacesbetweenthesolidparticles.
Thistechniqueisusuallydoneinaclosedvesseltoensure
thattheatmosphereissaturatedwithsolventvapourand
thatevaporationfromtheplateisminimisedbeforethe
run is complete.
Theplateisremovedwhenthesolventfrontapproaches
thetopoftheplateandthepositionofthesolventfront
recordedbeforeitisdried.
Advantages
1. More reproducible.
2. Separations arevery efficient because of the much
smallerparticlesizeofthestationaryphase.
High-performance Liquid Chromatography (HPLC)
HPLCisaseparationtechniquethatinvolvesinjection
ofasmallvolumeofliquidsampleintoatubepacked
with tiny particles [3 to 5 micron (µm) in diameter called
thestationaryphase]whereindividualcomponentsof
thesamplearemoveddownthepackedtube(column)
withaliquid(mobilephase)forcedthroughthecolumn
byhighpressuredeliveredbyapump.
Thesecomponentsareseparatedfromoneanotherbythe
columnpackingthatinvolvesvariouschemicaland/or
physical interactions between their molecules and the
packing particles.
Theseseparatedcomponentsaredetectedattheexitof
thistube(column)byaow-throughdevice(detector)
thatmeasurestheiramount.Anoutputfromthisdetector
is called a “liquid chromatogram”
High-performance thin layer Chromatography (HPTLC)
HPTLCis an advanced and automatedform of TLC
thatprovides superior separationpower, suitable for
qualitativeandquantitativeanalyticaltasks.
Itis a flexible, versatile andeconomical process
in which thevarious stages are carried out
independently.Itpromotesforsamplepreparation
requirementsare often minimal, simultaneous
processing of sample and standard, no prior
treatmentforsolventslikefiltrationanddegassing,
higherseparationefficiencies,shorteranalysistime,
lessconsumptionofmobilephase,visualdetection
possible,efficientdataacquisitionandprocessing,
lowcostperanalysisandlowmaintenancecostof
the instrument.
Itis a valuable tool forreliable identification, as it
provideschromatographic fingerprints thatcan be
visualisedandstoredaselectronicimage.
High-performance liquid chromatography (HPLC)
Application of chromatography in evaluation of herbal drugs
S. No. Herbal drug Chromatography Solvent system
1. St John’s wort TLC Ethyl acetate : dichloromethane : acetic acid : formic acid : water
(100 : 25 : 10 : 10 : 11)
2. Ginseng TLC Chloroform : Methanol : ethyl acetate : water (15 : 22 : 40 : 1)
3. Rhubarb TLC Acetone : water : formic acid (18 : 1 : 1)
4. Valerinic acid TLC Methanol : water (7 : 3)
5. Cinchona alkaloids TLC Chloroform : diethylamine (90 : 10)
6. Rhubarb TLC Acetone : water : formic acid (18 : 1 : 1)
7. Atropine TLC Methanol : acetone : diethylamine (25 : 24 : 1)
Section 2 Pharmacognosy
308
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