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Second intercountry scientific group meeting on Liver Diseases, Damascus, 4-8 February, 1984: specific screening techniques for markers of Hepatitis B infection

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W O R L D H E A L T H ~~{~~~ ORGANISATION MONDIALE ORGANIZATION ..

DE LA SANTE

SECOND INTERCOUNTRY SCIENTIFIC GROUP MEETING ON LIVER DISEASES

Damascus, 4-8 February 1984

E M / ~ N D . I N C . S ~ . L I V . D I S / ~

1 6 J a n u a r y 1984

Agenda i t e m 5.

SPECIFIC SCREENING TECHNIQUES FOR

MARKERS OF HEPATITIS B INFECTION

D r K . Nishioka* WHO Consu l t an t

* Vice P r e s i d e n t , Tokyo M e t r o p o l i t a n I n s t i t u t e of Medical S c i e n c e , Tokyo

and D i r e c t o r , WHO C o l l a b o r a t i n g C e n t r e f o r Reference and Research on V i r a l H e p a t i t i s

After first discovery of Australia antigen and its direct relationship

withPosttransfusion hepatitis by Agar gel diffusion technique by Okochi and

Murakami, serological methods for detection of HBV markers and corresponding

antibodies with higher sensitivity and specificity have been developed in our

country. These are immune adherence hemagglutination (IAHA) for detection of

HBsAg (Mayumi, 1971), Reversed passive hemagglutination (RPHA) for HBsAg (Juji,

1969), modified passive hemogglutination (PHA) for HBsAb (Imai, 1971), IAHA

for antiHBc antibody (Tsuda, 1975), PHA for HBe antigen and antibody (Takahashi,

1977), immune adherence for HBs antigen antibody complex (Tsuda, 1979, Takai,

1981), RIA using anti-human IgM coated beads for IgM anti HBc (Oguro, 1981),

high speed liquid chromatography PHA for IgM anti HBs (Naito, 1981).

These methods are currently employed widely and contributed to immunochemical

investigstion of HB virus as well as to clinical and public health studies.

Also detection of HBs antigen by Orcein staining (Shikata, 1974), HBc antigen

and HBs antigen of formalin fixed liver cells by fluorescent antibody technique

(Yoshizawa, 1977), HBe antigen and immunoglobulin in glomerular capillary walls

of membranous glomerulonephritis (Takahashi, 1978), receptor for polymerized

human and chimpanzee albumins on hepatitis B partcles co-occuring with HBe (Imai,

1979) also contributed to elucidation of phathogenic mechanisms of hepatitis B

virus infection.

In this issue, I will briefly summarize the markers of hepatitis B virus

infection and their detection methods.

(I) Markers of Hepatitis B Virus Infection

According to the taxonomy and nomenclature of viruses, 1982, after the fifth

International Congress of Virology, human hepatitis B virus is now classified

in "hepatitis B virus family" which is distinct from other hitherto known DNA

or RNA virus families. Wood-chuck. Marmota monax, hepatitis virus (WHV), ground

squirrel, Spermophilus beecheyi, hepatitis virus (GSHV) and Pekin duck, Anas

domesticus, type B hepatitis virus (DHBV) are included in this new virus family

The virus consists of nucleocapsid, which is an inner 27 nm, core particle

covered by virus envelop, 7 nm lipoprotein surface layer which has surface (HBs)

antigenic activity. HBs antigen is also-present on spherical particles mesuring

22 nm in diameter with a molecular size about 3 millions. These small particles

are observed most numerously in circulating blood due to over-production of surface

components in HBV infected host and appear to be made up exclusively of HBs antigen

as do tubular or filamentous forms which have the same diameter but may be over

200 nm long.

Two antigenic specificities, a and Re are common to all HBs antigen preparation.

Common antigenicity of a is also found in envelops of WHV and GSHV. In addition,

there are 2 sets of mutually exclusive determinants, d or y and w or r. This

results in 4 principal subtypes of HBsAg: adw, ayw, adr, and ayr.

In HBs antigen, all antigenic determinants and full immunogenicity were

demonstrated in 49,000 dalton poIypeptide (P49), which were cleaved into 22,000

(PI) and 27,000 (PII), which have been known as two principal polypeptides.

Both peptides combined by disulfide bonds show similar amino acid sequencies

and PI1 is glycosylated. They are supposed to be composed of 226 amino acids

coded by gene S region of HBV DNA.

After removal of surface layer (HBs antigen) from Dane particle, core (HBc)

antigen is shown on the naked core particle, which is nucleocapsid of the virus.

The main antigenic component of core particles is polypeptide with molecular

weight 19,000 (P19) composed of approximately 180 amino acids coded by gene C

region of HBV DNA. PI9 has been demonstrated to have both HBc and HBe antigenicity.

After partial digestion of core particles with protease, the HBc antigenicity

was lost and P19 is converted into polypeptide with 15,500 to 16,500 dalton

(P15.5) which has only HBe antigenicity. P15.5 is also the component of circulating

HBe antigen in the serum which is present in free or IgG-bound form and reflects

high infectivity of HBV in the blood. The antigenic heterogeneity of HBe antigen

(el, e2 and e ) remain unclear but e has two antigenic sites ( a and b sub5 3 specificities) which are demonstrated by monoclonal antibodies.

DNA polymerase activity and endogenous DNA template, as well as protein

kinase activity are shown in the inner core particle. DNA template, HB virus

genome, is circular double stranded DNA with a molecular weight of approximately 6 1.6 x 10 , composed of - L chain, approximately 3200 bases length with a nick

at a position of 1818 and + S chain with a length of 50-85 % of L chain, of

which 5' terminal is situated at a fixed nucleotide of - L chain. Some 250-300

nucleotides of 5' terminals of both chians are cohesive and maintained the circular

form of HBV DNA. Therfore 50 to 15 % of viral circular DNA is single strand

and DNA polymerase activity is to repair the single strand portion starting from

3' terminal of + S chain into double ~tranded DNA. DNA polymerase is coded by

gene P region of HBV DNA and measurement of this enzyme activity give5 a good

quantitative marker of HBV infectivity as well as HBV DNA itself. Infectivity

of the virus is not completely lost by heating at 60°C for 10 hours but lost

by heating at 9 8 " ~ , 2 minutes and by treatment with 1 :2,000 dilution of formalin

- 2 -

at 37°C for 96 hours in diluted plasma. For disinfection, autoclaving, boiling

for 10 minutes, treatment with 0.1 % Na-hypochlorite (e-g. 1:50 clorax), 2 %

glutar aldehyde or ethylen-oxide gas are practical and washing out the contaminated

materials throuehlv with running tap water to dilute out the virus infectivity

is recommended.

HBV DNA was cloned in E. coli and DNA sequence was determined in 1979.

HBc antigen was produced by E. coli and HBs antigen was produced by yeast

employing recombinant DNA techniques. Production of test reagents and vaccine

with these methods became possible. In this way, both immunochemical investigation

and molecular characterization of the viral DNA have elucidate the nature of the

HBV infection standing upon these backgrounds.

(11) Laboratory Tests for the Detection of HBV Markers

Routine laboratory tests of HBV markers are classified into three steps.

First screening: HBs antigen This is for detection of possibility of the presence

of HBV.

Second step: (a) Subtype of HBsAg for pursuing the route of infection, (b) HBeAg,

anti HBe, DNA polymerase activity, HBV DNA, for estimation of the infectivity

of the HBs antigen positive blood or assume the prognosis of clinical c.ourse.

(c) Anti HBcAg. To differentiate current infection and remote infection. IgM anti

HBc is an early antibody and is probably associated with viral replication. The

ratio of IgM to IgG anti HBc will give better marker for distinguishing both

types of infection.

Third step: Anti HBs. This is useful for the purpose of epidemiological survey

of HB virus spread and contributes as a marker of immunological host resistance

against HBV infection but not for clinical diagnostic value for viral hepatitis

especially with IgG type anti HBs.

In addition to the laboratory test erllploying~er~l~gi~al measurement of

circulating HBV markers, biopsy 0rautoDsy:spe~imen can be used for detection of

HBs antigen or HBc antigen in liver tissues. Especially formalin fixed specimen

after storage for several decades can be used for detection of both HBs antigen

and HBc antigen in liver tissues.

Based on the laboratory tests, HBV infection can be classified into (i)

transient HBV infection and (ii) persistent HBV infection.

(i) Transient HBV infection (acute type)

Upon primary exposure of the virus to immunologically matured host,

acute type of HBV infection occurs. In this case, transient antigenemia of both

HBsAg and HBeAg is followed by clinical manifestation of hepatitis with rather

long incubation period. Then antibody responses against HBcAg, HBeAg and finally

anti-HBsAg are induced resulting in elimination of the virus and healing of

hepatitis. IgM anti HBc appeared earlier and IgG anti HBc later. In current stage

shortly after primary exposure, the ratio of IgMjIgG anti HBc is much higher than

promate stage.

Most cases of acute type hepatitis B, post transfusion hepatitis, accidental

hepatitis in medical institutions and infection through drug abuser of venereal

routes are this trpe of infection. Except few cases of fulminant hepatitis, the

prognosis of this type of infection is better generally and development of chronic

hepatitis, liver cirrhosis or hepatoma are extremely rare. Of course, many cases

of subclinical infection exist and they are recognised by demonstration of anti

HBs antibody.

(ii) Persistent HBV infection (chronic type)

The second, persistent HBV infection is characterised by persistent

HBs antigenemia, persistent IgG anti HBc with high titre over 1000 by IAHA unit

and very rare anti HBs response. Clinical symptoms of hepatitis are often observed

as exacerbation of persistent HBV infection with positkve HBeAg. In some of such

cases, differential diagnosis from the first type, i.e. acute hepatitis due to

HBV transient infection, is 1 difficult clinically but through measurement of these HBV markers as described above, especially the ratio of IgM/IgG anti HBc

titre, two types can be differentiated.

HBV infection of this type occurs by primary exposure of the virus to

immunologically inmature or impaired host to HBs antigen and specifec immunological

unresponsiveness to HBs antigen occurs. Therfore, coexistence of HBV without

immune elimination from the host is induced in the host exposed to HBV. This

type of infection occurs in the newborn babies born to the HBe antigen positive

HBV carrier mothers mostly at the time of birth and small portion in utero.

Close contact with HBV carriers in childhood is also considered as main routes

of infection. Immunosuppresive effect due to virus infection such as measles,

rubella and other diseases might cause immunological unresponsiveness to the

exposed HBV resulting in induction of HBV persistent infection.

1) l.ests for Hepatitis B Surface Antigen and its Antibody

HBsAg and anti-HBs, the first antigen-antibody system to be associated with

hepatitis, were originally detected by immunodiffusion, a simple test which allows

for high specificity, but relatively low sensitivity. Many other methods are now

available for their detection. Somewhat more sensitive techniques include counter-

immunoelectrophresis, rheophoresis, comlemen-fixation, haemagglutination, and

immunofluorescence tests. Greater sensitivity for detection of HBsAg has been

achieved by immune adherence haemagglutination, reversed passive latex agglutination,

reversed passive haemagglutination, and immunoelectronmicroscopy. RPHA has been

recommended by WHO scientific group as a most practical method with a greater

sensitivity and specificity for detection of HBs antigen. For detection of HBs

antibody, PHA technique has been considered as most practical laboratory test for

anti HBs antibody detection. The most sensitive methods for detecting HBsAg or

anti-HBs are radioimmunoassays(RIA), including solid-phase and radioimmunoprecipi-

tation techniques; the latter being a double antibody RIA. More recently, enzyme

immunoassays have been shown to possess a sensitivity similar to that of radio-

immunoassays. Positive test results obtained with the highly sensitive technique

should be confirmed as specific by appropriate means. A variety of HBsAg subtypes

have been identified first by immunodiffusion, followed by hemagglutination

inhibition test with greater sensitivity. Recently solid phase RIA employing

monoclonal antibody was developed.

Immune complex of HBs antigen, which may play a role in pathogegis;-rnerbanis~;,;~

of active viral hepatitis can be measured by immune adherence of immune complex

with complement to C3b receptors of human erythrocytes followed by coupling with

radio-labelled anti HBs antibody.

Co-existence of antibody against different subdeterminant of HBs antigen

was observed in some cases of carriers of HBs antigen, such as anti-w antibody in

HBs/adr carrier. This is not immune con~plex of HBs antigen and antibody.

2) Tests for Hepatitis B Core Antigen and its Antibody

Uncoated hepatitis B core antigen (HRcAg) has not been detected in the circulation

but it is present in the nuclei of infected hepatocytes where it has been

identified by various techniques.

Anti HBc antibody can be measured by hemagglutination inhibition test,

immune adherence hemagglutination, RIA and enzyme immunoassay. Hemagglutination

inhibition and routine radioimmunoassay detect both anti HBc IgM and anti HBc IgG,

while immune adherence hemagglutination detects anti HBc IgG only. Radioimmunoassay

using beads coated by human IgM antibodies is suitable for detecting IgM anti

HBc . Anti-HBc IgM is present during the acute and early convalescent stages of

uncomplicated acute type of HBV infection. In cases of chronic infection,..;rnti-

HBc IgM levels may indicate the degree of virus activity. In contrast, low titres

of only anti-HBc IgG in the absence of other serological markers of HBV may

indicate a previous HBV infection; these possibilities should be considered in

epidemiological investigations'. High titre of only anti-HBc IgG, most preferably

measured by IAHA may indicate a persistent infection of HBV.

3) Tests for Hepatitis Be Antigen and its Antibody

The presence of HBeAg in the serum appears to correlate with the replication

of hepatitis B virus in the host and may be of some prognostic significance.

There is a highly significant correlation between HBeAg, 'DNA polymerase, circulating

HBV and infectivity. Anti-HBe is associated with reduced or relatively low

infectivity; virus production can occur in the presence of anti-HBe, although

at a diminished level.

Several serological methods are now available for the detection of HBeAg

and anti-HBe. In order of increasing sensitivity these include immunodiffusion,

rehophoresis, immunoelectrosyneresis, passive haemagglutination, enzyme immuno-

assay and RIA. HBe antigen exists in the serum in dual forms. One form is smaller

than IgG, soluble in 1.33 M ammouniwn sulfate, electrophoretic mobility in d-globulin

region and the other is larger than IgG, insoluble in 1.33 M ammonium sulfate

and electrophoretic mobility in fl- to $-globulin regions. The first is free

"small" HBe antigen and the latel' is IgG-bound "large" HBe. Bcth can be differentiated

using these characterstics with sensitive method for detection of HBe antigenicity

such as passive hemagglutination or RIA.

There is a shift from free HBe antigen through IgG bound HBe antigen to anti-

HBe stages in acute type of HBV infection or chronic type of HBV infection as well

as in expermental infection in chimpanzee. IgG bound HBe was also found in the

patients with membranous glomerulonephritis. Immune complex composed of HBe antigen

and antibody may play a role in various allergic syndrome with HBV infection.

Conversion of HBe antigen to anti HBe kcas not only observed in natural course

of infection but also in the course of anti-viral treatment of chronic HBV infection

and might give a proper monitoring system for evaluation of anti-viral treatment.

4) Tests for Hepatitis B Virus DNA Polymerase

Special assays detect this enzyme activity which can complement other HRV

serological tests or it may correlate with increased infectivity. A close correlation

has been demonstrated between the presence of specific DNA polymerase and infectious

hepatitis B virus. The detection of specific DNA polymerase is therefore a useful

marker of HBV replication. This enzyme activity is often found early in the course

of infection when large numbers of virus particles are present. It generally

correlates with the presence of HBeAg and it persists in some chronically infected

individuals with continuing viral replication. Frequent fluctuations in the levels

of DNA polymerase are observed in serial samples from chronically infected patients

and such variations should be taken into account while monitoring the effect of

treatments to alter the chronic carrier state.

5) Tests for HBV DNA

After development of HBV-DNA cloning in E. coli, probe of 3 2 ~ labelled HBV

DNA can be utilized to detect HBV DNA in fresh liver tissue frozen in liquid

nitrogen. Liver DNA was extracted and digested with a restriction endonuclease.

DNA fragments were fractionated by agar-gel electrophoresis, denatured and

transferred to a nitrocellulose filter. The denatured DNA fragments immobilized

on the filter were hybridized with denatured cloned 3 2 ~ labeled HBV DNA. Hybridi-

zation which indicates HBV DNA in liver tissue is revealed by the presence of

bands on autoradiogram. The determination of the state of HBV DNA in the liver

cells, whether integrated into host cell DNA or episomal state can be done

employing proper restriction enzymes. Measurements of HBV DNA in the serum corres-

ponds well with the level of DNA polymerase activity and 1 picogram of HBV DNA 5 6 (5 x 10- - 10 HBV particles) can be measured. Although important for molecular

and pathogenesis studies with great sensitivity, these techniques are not used

for routine diagnosis of HBV infection at present.

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Type de document Meeting reports
Date d'adoption
Source Organisation mondiale de la santé