Literature DB >> 33172407

Hereditary intrinsic factor deficiency in China caused by a novel mutation in the intrinsic factor gene-a case report.

Jing Ruan1, Bing Han2, Junling Zhuang1, Miao Chen1, Fangfei Chen1, Yuzhou Huang1, Wenzhe Zhou1.   

Abstract

BACKGROUND: Hereditary intrinsic factor deficiency is a rare disease characterized by cobalamin deficiency with the lack of gastric intrinsic factor because of gastric intrinsic factor (GIF) mutations. Patients usually present with cobalamin deficiency without gastroscopy abnormality and intrinsic factor antibodies. CASE
PRESENTATION: A Chinese patient presented with recurrent severe anemia since age 2 with low cobalamin level and a mild elevation of indirect bilirubin. The hemoglobin level normalized each time after intramuscular vitamin B12 injection. Gene test verified a c.776delA frame shift mutation in exon 6 combined with c.585C > A nonsense early termination mutation in exon 5 of GIF which result in the dysfunction of gastric intrinsic factor protein. The hereditary intrinsic factor deficiency in literature was further reviewed and the ancestry of different mutation sites were discussed.
CONCLUSIONS: A novel compound heterozygous mutation of GIF in a Chinese patient of hereditary intrinsic factor deficiency was reported. It was the first identified mutation of GIF in East-Asia and may indicate a new ancestry.

Entities:  

Keywords:  Cobalamin deficiency; Intrinsic factor; Megaloblastic anemia

Year:  2020        PMID: 33172407      PMCID: PMC7654184          DOI: 10.1186/s12881-020-01158-z

Source DB:  PubMed          Journal:  BMC Med Genet        ISSN: 1471-2350            Impact factor:   2.103


Background

Vitamin B12 or cobalamin deficiency is characterized by megaloblastic anemia with neurological problems and can be caused by numerous acquired and inherited diseases [1]. Decreased intake, impaired gastric absorption including pernicious anemia and gastrectomy, impaired intestinal absorption caused by parasites infection are common acquired causes. As for inherited diseases, the mechanisms vary from impaired cobalamin absorption, defects of cobalamin transport to failure of cellular cobalamin metabolism. Two hereditary diseases have been found to cause cobalamin malabsorption including Imerslund-Grasbeck syndrome (IGS) and hereditary intrinsic factor deficiency (IFD) [2]. IFD is caused by homozygous or compound heterozygous mutation in the gene of gastric intrinsic factor on chromosome 11q12. It presents in early childhood with the lack of gastric intrinsic factor, while the gastric acid secretion is normal and no autoantibody to intrinsic factor is found. It is a rare disease mostly occurring in the Europe [3]. Here we present a Chinese family identified to have hereditary intrinsic factor deficiency with a new mutation site in GIF that has not been reported.

Case presentation

Clinical manifestation

The proband was a 16-year-old Chinese boy with a history of patent ductus arteriosus. The child was initially evaluated for severe anemia at the age of 2. Severe megaloblastic anemia, low cobalamin level and a mild elevation of indirect bilirubin were found. The hemoglobin level normalized after intramuscular vitamin B12 injection and oral folate with unknown dosage. He did not have severe symptoms the following years. At age 8, he was admitted to the hospital for the recurrence of anemia induced by upper airway infection. He also had jaundice and tea-colored urine. The hemoglobin was 57 g/L, mean cell volume was 97.8fL, and the cobalamin level was 80 pg/mL. Hemolytic anemia was also found with the indirect bilirubin to be 43.0umol/L and lactate dehydrogenase to be 1832U/L. Rous test, Coombs test, erythrocyte osmotic fragility test, glucose-6-phosphate dehydrogenase activity and the count of CD55/CD59 negative cells were normal. The ultrasound of the spleen showed a mild enlargement. Bone marrow indicated megaloblastic erythroid hyperplasia. He was treated with intramuscular injection of vitamin B12 at the dosage of 0.5 mg every other day and his hemoglobin increased to 114 g/L. The patient had recurrent anemia 4 times from age 10 to 16 and the hemoglobin regained normal after B12 supplement. He came to our hospital for further examination. We found the antibody of intrinsic factor was negative and his gastroscope was normal. Since his grandmother and his father also had mild anemia, cobalamin concentration was then tested, and they were both diagnosed to have vitamin B12 deficiency. (Fig. 1). Therefore, hereditary disease was further suspected, and we performed genome sequencing to convince it.
Fig. 1

Family tree of the proband

Family tree of the proband

Analysis of genome sequencing

Genomic DNA was isolated from the peripheral blood of the patient. SeqCap EZ Choice XL Library (Roche NimbleGen) was used to hybridize the exons and adjacent intron regions (50 bp) of 238 genes related to hereditary hematological diseases. After amplification and purification, high-throughput sequencing was performed by Illumina. Analysis was performed using the hg19 annotation information provided by UCSC. Genomic DNA samples of the patient’s parents and grandparents were then isolated for validation of the identified mutations by Sanger sequencing. The patient had compound heterozygous mutation in GIF gene (Fig. 2). There was a c.776delA mutation combined with c.585C > A mutation on the other allele. c.776delA (p.Q259Rfs*17) is a frame shift mutation in exon 6 caused by 1 bp deletion which would result in abnormal protein translation. It was also found in father and grandmother of the proband. c.585C > A (p.Y195X) is a nonsense mutation in exon 5 that would lead to the early termination of the gene coding protein and was also detected in his mother. Since there are reports for mutations of the downstream coding sites that could result in abnormal function of the gastric intrinsic factor, these two mutations are both thought to cause pathological changes.
Fig. 2

Sanger validation of the compound heterozygous mutation in GIF gene

Sanger validation of the compound heterozygous mutation in GIF gene

Discussion and conclusions

Juvenile cobalamin deficiency usually presents with various hematological problems ranging from mild weakness to lift-threatening anemia. Patients may present with yellow skin caused by combined anemia and jaundice. Rate of infection is also increased due to neutropenia, thrombocytopenia and megaloblastic anemia. The neurologic abnormalities are also variable and may not be recognized without attention. Growth retardation and learning difficulties are more commonly seen in the juveniles [4]. Patients may also have dementia, psychological problems and neurodegeneration of the spinal cord. Although inborn cobalamin deficiency is rare, with social and economic development, dietary and infectious causes of cobalamin deficiency are decreased and the prevalence of inherited cobalamin deficiency has increased [5]. Inborn errors affecting intestinal cobalamin absorption, transport of cobalamin in blood, uptake of cobalamin by cells or intracellular cobalamin metabolism could all cause cobalamin deficiency. As for hereditary cobalamin malabsorption, IGS caused by CUBN or AMN mutations and IFD caused by GIF mutations are most common ones. Schilling test was used in the past to differentiate IFD from IGS and has been obsoleted because of invasiveness and lack of access to the radiolabeled vitamin B12. Genetic testing is now available for the validation and classification of the inherited cobalamin malabsorption. Tanner et al. 2012 [3] observed 22%, 42%, 36% of the mutations in GIF, CUBN and AMN genes respectively in a large genetic screening study of 154 families or patients with hereditary deficiency of vitamin B12 absorption. Hereditary intrinsic factor deficiency is characterized by cobalamin deficiency with the lack of gastric intrinsic factor because of GIF mutations. The gastric acid secretion and gastroscopy are often normal and no autoantibodies to intrinsic factor should be found. We summarized the mutations in GIF from previous literature in Table 1. The first report with identified genetic mutations was in 2004 [6]. Yassin et al. [6] identified a 4-base deletion (c183_186delGAAT, p.Met61fs) in exon 2 in an 11-year-old girl with severe anemia and cobalamin deficiency. This homozygous mutation seems to originate in Africa and was also reported by Tanner et al. 2005 [7] and Ament et al. 2009 [8]. In Exon 2, another 2 homozygous mutation sites were also found including the c.137C > T (p.Ser46Leu) and c.161delA (p.Asn54fs). There are also homozygous mutations in exon 5 (c.685G > A) [3], exon 8 (c.1175_1176insT) [7] and exon 9 (c.1222G > A) [9]. Intron mutations in the splice site can also cause abnormal protein structures and functions. The most numerous one was c.79 + 1G > A mutation commonly found in Europe. Not only the homozygous mutation of this site but also in combination with other defects including a 3-terminal deletion in intron 8 and 3 different missense mutation sites (c.137C > T, c.290 T > C [10], c.673A > C). c.80-1G > A in intron 1 [7] and c.1073 + 5G > A [11] homozygous mutations were reported respectively in West Asia area. There are also compound heterozygous mutations in two exons that generate IFD [8, 12]. Notably, Chery et al. [13] reported 2 IFD family who carried FUT2 rs601338 secretor variants that impairs GIF secretion. This variant in combination with GIF heterozygous mutation worsened the B12 status.
Table1

Summary mutations in the GIF gene according to previous literature (add to page 5 line 19)

DNA mutationRegionGenotypePredicted consequenceReferencesOrigin
c.79 + 1G > Aintron 1homsplice site mutationTanner et al. 2005 [5], Tanner et al. 2012 [3]France, Norway, USA
c.79 + 1G > A & del Intron 8 to distal of 3′-endintron 1 & delcomp hetsplice site mutation & partial gene deletionTanner et al. 2012 [3]Norway
c.79 + 1G > A & c.137C > Tintron 1 & exon 2comp hetsplice site mutation & p.Ser46LeuTanner et al. 2012 [3]USA (Western Europe?)
c.79 + 1G > A & c.290 T > Cintron 1 & exon 3comp hetsplice site mutation & p.Met97ThrOvergaard et al. 2010 [10]USA (Western Europe?)
c.79 + 1G > A & c.673A > Cintron 1 & exon 5comp hetsplice site mutation & p.Ser225ArgTanner et al. 2012 [3]Siberia
c.80-1G > Aintron 1homsplice site mutationTanner et al. 2005 [5]Kuwaiti
c.137C > Texon 2homp.Ser46LeuTanner et al. 2005 [5], Tanner et al. 2012 [3]Turkey
c.161delAexon 2homp.Asn54fsTanner et al. 2005 [5]Turkey
c.183_186delGAATexon 2homp.Met61fsYassin et al. 2004 [6], Tanner et al. 2005 [5], Ament et al. 2009 [8]UK (Jamaican), African American
c.183_186delGAAT & c.659 T > Cexon 2 & exon 5comp hetp.Met61fs & p.Ile220ThrAment et al. 2009 [8]USA (African, European)
c.256 + 2 T > G & c.659 T > Cintron 2 & exon 5comp hetsplice site mutation & p.Ile220ThrGarcía Jiménez et al. 2008 [12]Spain
c.290 T > C & ?exon 3 & ?comp hetp.Met97Thr & ?Tanner et al. 2012 [3]Finland
GIF c.290 T > C & FUT2 rs601338 461GG variantcomp hetGIF p.Met97Thr & FUT2 secretor variantChery et al. 2013 [13]France
c.431_438delAGAAGAAC & c.974_975insGexon 4 & exon7comp hetp.Gln144fs & p.Val325fsTanner et al. 2012 [3]Austria
c.435_437delGAA & FUT2 rs601338 461GG variantcomp hetp.Lys145_Asn146delinsAsn & FUT2 secretor variantChery et al. 2013 [13]France
c.469 T > C & ?exon 4 & ?comp hetp.Phe157Leu & ?Tanner et al. 2012 [3]USA (Lebanese)
c.685G > Aexon 5homp.Ala229ThrTanner et al. 2012 [3]Turkey, Germany (Lebanese)
c.938C > T & ?exon 7 & ?comp hetp.Thr313Ile & ?Tanner et al. 2012 [3]Israel (Arabic)
c.1073 + 5G > Aintron 7homsplice site mutationSturm et al. 2013 [11]USA (Chaldean)
c.1175_1176insTexon 8homp.Thr393fsTanner et al. 2005 [5]Turkey
c.1222G > Aexon 9homp.Glu408LysLund Leunbach et al. 2011Danish
Summary mutations in the GIF gene according to previous literature (add to page 5 line 19) As for this patient, we found a c.776delA frame shift mutation in exon 6 combined with c.585C > A nonsense early termination mutation in exon 5 and the two mutation alleles were inherited from his parents respectively. This compound heterozygous mutation caused the severe loss of function of the encoding gastric intrinsic factor protein and resulted in cobalamin deficiency. It was the first identified novel mutation of GIF in East-Asia and may indicate a new ancestry. The treatment is merely vitamin B12 administration by several routes including intramuscular and oral. Our patient recovered the hemoglobin level each time after applying vitamin B12. In fact, treatment with life-long cobalamin administration at regular intervals is life-saving and prevents further deterioration [14]. Early diagnosis and detection by genetic methods in such juvenile cases followed by regular treatment may help avoid severe hematological, neurological and developmental problems. In summary, we identified a case diagnosed to be hereditary intrinsic factor deficiency firstly with genetic information in the East Asia. A novel compound heterozygous mutation of GIF was reported which may indicate a different origin from previous literature.
  14 in total

1.  Hereditary intrinsic factor deficiency in chaldeans.

Authors:  Amy C Sturm; Elizabeth C Baack; Michael B Armstrong; Deborah Schiff; Ayesha Zia; Sureyya Savasan; Albert de la Chapelle; Stephan M Tanner
Journal:  JIMD Rep       Date:  2012-03-18

2.  Gastric intrinsic factor deficiency with combined GIF heterozygous mutations and FUT2 secretor variant.

Authors:  Celine Chery; Alain Hehn; Nadir Mrabet; Abderrahim Oussalah; Elise Jeannesson; Cyril Besseau; Jean-Marc Alberto; Isabelle Gross; Thomas Josse; Philippe Gérard; Rosa Maria Guéant-Rodriguez; Jean-Noel Freund; Jean Devignes; Frédérique Bourgaud; Laurent Peyrin-Biroulet; François Feillet; Jean-Louis Guéant
Journal:  Biochimie       Date:  2013-02-08       Impact factor: 4.079

Review 3.  Juvenile selective vitamin B₁₂ malabsorption: 50 years after its description-10 years of genetic testing.

Authors:  Ralph Gräsbeck; Stephan M Tanner
Journal:  Pediatr Res       Date:  2011-09       Impact factor: 3.756

4.  Inborn errors of cobalamin absorption and metabolism.

Authors:  David Watkins; David S Rosenblatt
Journal:  Am J Med Genet C Semin Med Genet       Date:  2011-02-10       Impact factor: 3.908

5.  [Hereditary juvenile cobalamin deficiency due to mutations in GIF gene].

Authors:  M C García Jiménez; A Baldellou Vázquez; M T Calvo Martín; G Pérez-Lungmus; J López Pisón
Journal:  An Pediatr (Barc)       Date:  2008-07       Impact factor: 1.500

6.  Identification of a 4-base deletion in the gene in inherited intrinsic factor deficiency.

Authors:  Fawwaz Yassin; Sheldon P Rothenberg; Sreedhar Rao; Marilyn M Gordon; David H Alpers; Edward V Quadros
Journal:  Blood       Date:  2003-10-23       Impact factor: 22.113

7.  Juvenile cobalamin deficiency in individuals of African ancestry is caused by a founder mutation in the intrinsic factor gene GIF.

Authors:  Andrea E Ament; Zhongyuan Li; Amy C Sturm; James D Perko; Sarah Lawson; Margaret Masterson; Edward V Quadros; Stephan M Tanner
Journal:  Br J Haematol       Date:  2008-11-19       Impact factor: 6.998

8.  How can cobalamin injections be spaced in long-term therapy for inborn errors of vitamin B(12) absorption?

Authors:  Amina Boina Abdallah; Hélène Ogier de Baulny; Renata Kozyraki; Sandrine Passemard; Odile Fenneteau; Sophie Lebon; Odile Rigal; Bettina Mesples; Karima Yacouben; Stéphane Giraudier; Jean-François Benoist; Manuel Schiff
Journal:  Mol Genet Metab       Date:  2012-07-20       Impact factor: 4.797

Review 9.  Imerslund-Gräsbeck syndrome (selective vitamin B(12) malabsorption with proteinuria).

Authors:  Ralph Gräsbeck
Journal:  Orphanet J Rare Dis       Date:  2006-05-19       Impact factor: 4.123

10.  Inherited cobalamin malabsorption. Mutations in three genes reveal functional and ethnic patterns.

Authors:  Stephan M Tanner; Amy C Sturm; Elizabeth C Baack; Sandya Liyanarachchi; Albert de la Chapelle
Journal:  Orphanet J Rare Dis       Date:  2012-08-28       Impact factor: 4.123

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