Literature DB >> 28723945

Haematological and CD4+ T cells reference ranges in healthy adult populations in Gojjam zones in Amhara region, Ethiopia.

Wondemagegn Mulu1, Bayeh Abera1, Zewdie Mekonnen2,3, Yesuf Adem1, Mulat Yimer1, Yohannes Zenebe1, Asmare Amuamuta2,3, Wondimu Gebeyehu4.   

Abstract

INTRODUCTION: Establishing national population haematological and immunological reference ranges are essential for clinical management of patients. However, there is scarcity of information on community based haematological reference ranges established from Ethiopian population. Therefore, this study aimed at determining haematological and CD4+ T cells reference ranges in healthy adults from East and West Gojjam zones, Ethiopia.
METHODS: Community based cross-sectional study was conducted from May 2015 to December 2015 in healthy adult residents of Gojjam zone. A total of 481(246 females and 235 males) healthy adults enrolled in the study. Healthy adults were defined by medical history, physical examination and laboratory screening for HIV, HBV, HCV and intestinal parasitosis. Haematological parameters were measured using haematology analyzer MindrayBC320 (Mindray Biomedical electronic Corporation, China). CD4+Tcells were enumerated using FACS count (Becton Dickinson).
RESULTS: The median age of the participants was 25 years. The overall median and 95th percentile of CD4+ T cells count were 869 cells/mm3 and396-1598 cells/mm3, respectively. Females had a significantly higher CD4+ T cell counts compared to males (P = 0.002). The 95th percentile range for red blood cells (RBCs) was 3.93-6.1 x 106cells/mm3and for hematocrit (Hct) was 40-58% while for hemoglobin (Hb) was 15.69-17.84g/dl. Males had significantly higher values of RBC and Hct than females (P < 0.001). Females (120-379 x 106 cells/mm3) had significantly higher platelet counts than males (106-352 x106 cells/mm3) (P < 0.001). The overall median of WBC was6.78 x103/mm3and its95thpercentile range was3.5-11.5 x103/mm3. The overall 95th percentile range of MCV, MCH and MCHC were 89.5-107.5 fl, 28-34 pg and 30-33.2g/dl, respectively. The higher mean absolute count of RBCs was found in the youngest age groups (P = 0.03). The mean count of RBCs and Hct were significantly higher in highschool completed and above than other participants (P < 0.001). The lower and upper limit of platelet counts was significantly higher in highland (118 -383x106 cells/mm3) compared to lowland residents (107-352 x106 cells/mm3) (P < 0.001). Moreover, it was significantly higher in residents with better monthly income (124-383 x106 cells/mm3) compared to the counters (115-368 x106 cells/mm3) (P = 0.02).
CONCLUSIONS: Some of the haematological and CD4+ T cells reference ranges of the healthy adults in this study showed variations with the reference ranges used and reported so far in Ethiopia, Africa and Western countries. We recommend further study considering gender, altitude, and residency in other parts of Ethiopia to establish national reference ranges for Ethiopian population.

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Year:  2017        PMID: 28723945      PMCID: PMC5516999          DOI: 10.1371/journal.pone.0181268

Source DB:  PubMed          Journal:  PLoS One        ISSN: 1932-6203            Impact factor:   3.240


Introduction

Health and disease can only be distinguished by accurate and reliable reference ranges of a particular test [1]. Haematological and CD4+ T cells reference ranges are useful both in the clinical and research areas [2]. They are primarily used for accurate interpretation of laboratory results, identifying abnormal laboratory results, guiding patient diagnosis and clinical managements [2]. Reference ranges are essential to screen physiological or pathological conditions and monitor patho-physiological changes after infection or disease states, or following the administration of drugs in therapeutic or clinical interventions and vaccine studies [3]. Haematological tests are used to screen the presence and type of blood disorders such as anemia and leukemia as well as different infections, immune status and disease progression [1,4]. Particularly with the HIV pandemicity and its very serious effect on sub-Saharan Africa, local community based haematological and CD4+ T—cell count for healthy populations is critical in supporting decisions of treatment initiation, monitoring disease progression and response to antiretroviral therapy [5]. Though haematological laboratory reference ranges are an important tool for identifying abnormal laboratory results, they vary due to differences in age, sex, lifestyle, ethnic background, climate and altitude[6,7].Furthermore, numerous studies in African, Asian and Western countries reported that reference ranges vary considerably in different populations, within population, groups, geographical regions, climate, race and dietary habits [3, 7–11]. Likewise, the normal ranges of red blood cell counts (RBCs), haemoglobin (Hb) concentration, hematocrit (Hct), mean cell volume (MCV), total white cell count (WBC), platelet and CD4+ T- cell counts are known to vary with age, sex, dietary patterns, ethnic origin, genetic and environmental factors [6, 7]. Few studies conducted in Ethiopia among apparently healthy individuals attending health institutions reported the presence of significant differences in normal laboratory ranges compared with those of Western countries [1, 5]. Thus, the establishment of haematological reference ranges specific for Ethiopian population has particular importance for interpretation of laboratory test results and provision of quality services in the health care delivery. Differences have been documented between reference ranges of western countries, African populations and between different African ethnic groups. According to Clinical Laboratory Standard Guidelines (CLSI), each laboratory should establish their own reference ranges from the local population or validate those obtained from different settings. However, clinicians and researchers in Ethiopia are still using haematological reference ranges of western countries without any validation mechanism. Therefore, lack of own reference ranges may result in inappropriate management of patients and other decision making. Moreover, the precise absolute CD4+ T cell counts are important surrogate marker to determine the appropriate staging and treatment of HIV infected individuals. Therefore, there is atop urgent to have a base line data of reference ranges of haematological indices for healthy population at the community level. Thus, this study aimed at determining the reference ranges of haematological and CD4+ T cells indices in the community of Gojjam Zones, Ethiopia.

Materials and methods

Study design, period and setting

Community based cross-sectional study was conductedfrom May 2015 to December 2015 among healthy adult residents in Jabitehnan and DebreMarkos administrative districts of Gojjam, Amhara National Regional State. Jabitehnan district is a lowland area located in West Gojjam Zone 160 Kilometers away from the regional city. It has a total population of 287,045. DebreMarkos is the capital city of East Gojjam zone located 268 Kilometers away from Bahir Dar city. It has an altitude of 1800m above sea level with a total population of 93,900 [12]. The collected blood samples from each district processed and analyzed at DebreMarkos Referral hospital laboratory. The source populations were all healthy adults of the East and West Gojjam Zones in the Amhara National Regional State. Healthy adults with age ≥ 18 years of both sexes from the selected households in the study area were the study population.

Sample size and sampling

We calculated the sample size using single population proportion formula. It was determined by taking a proportion of 0.5 assuming that, mean (μ) population for each parameters is known to be 50%, 2% marginal error, 95% confidence intervals. Therefore, a sample size of 481 was determined. Considering altitude difference, one lowland and one highland districts taken randomly from Gojjam administrative zones. The number of sub-districts were determined proportional to their population size of each districts. Sub-districts selected using simple random sampling technique. Moreover, from the selected sub-districts, the number of households were determined proportional to their population size. We selected nth households from each districts using systematic random sampling after getting the nth value by dividing the total number of households with the total number of selected households. From each selected households, a healthy adult (≥18 years old) was selected using lottery method. Thus, only one adult from each household included in the study.

Variables

Reference ranges of haematological parameters and CD4+T cells were dependent variables while age, sex, altitude, residence, monthly income, educational and marital status were independent variables.

Inclusion criteria

Healthy adults of permanent residents of the study area with age ≥ 18 years of both sexes from the selected households.

Exclusion criteria

Age <18 years, adults with intestinal parasitic infections, haemoparsites, skin rashes, history of blood transfusion < 6 months, HIV positive, HBsAg positive, HCV positive, pregnant, on any medication, exhibiting febrile symptoms, observable mental illness, disabled, smokers, chronic alcohol drunkers, anaemic, chronic diseases and acutely ill patients as per the recommendations of WHO excluded from the study. Blood samples were therefore obtained from healthy adults selected to generate haematological values.

Operational definitions

Healthy adults: the absence of disease or disabilities based on medical history, physical diagnosis, clinical sign and symptom plus laboratory investigations. Reference range: the range between, and including two reference values defined by a specific percentage (usually 95%) for haemato-immunological parameters of healthy individuals. 95 percentile ranges: It is ranges between, and including the 2.5th percentile and the 97.5th percentile.

Data collection

Initially, all participants screened with medical history and physical examination by physicians. Apparently healthy adults further screened for intestinal parasitosis, diabetes, anaemia, HIV, HBsAg and anti- HCV. Socio-demographic factors collected from each participant using a structured questionnaire via face to face interview.

Laboratory analysis

After completion of the interview, 5 ml of venous blood collected from each participant in the morning and stored in vacutainer tube containing ethylenediamine tetra acetic acid (EDTA).Haematological parameters such as WBC count, differential white cell count (including neutrophilis, mixed white cells and lymphocytes), RBC count, Hb, Hct, MCV, MCH, MCHC, and platelet count performed using an automated haematology analyzer MindrayBC320(Mindray Biomedical Electronic Corporation limited, China).As per the manufacturers instruction the machine aspirated 13μl of blood into a chamber and diluted with a balanced isotonic solution. The diluted blood sample was split in to two parts: one went for RBC and platelet counting and the other for total WBC, Hb and differential counting. Fluorescence-activated cell sorter (FACS) system (Becton Dickinson, USA) was used to enumerate absolute values for CD4+ T cells. FACs count system uses single reagent tube for enumeration of absolute CD4 + T cells count in whole blood. In brief, 50 μl of whole blood mixed and incubated at 21oc for 20 minutes with 20 μl of a CD4 reagent. Red blood cells lysed by adding 450 μl of fluorescence-activated cell sorter lysing solution (Becton Dickinson Immunocytometry Systems). The tubes incubated at 21oc for 10 minutes, and then analyzed with the FACS Counts’ Cell Quest software (Becton Dickinson Immunocytometry Systems) within six hours.

Quality control

By using quality control (Multicheck Becton Dickinson Immunocytometry Systems), the accuracy of the technique assessed. For CD4 + T cells BDFACs Count TM controls for high, medium, low and zero controls were used during enumeration to validate CD4 machine. Moreover, for haematological parameters, Mindray BC320 calibrator and low, medium and high control samples were run during each day of analysis as defined in the instrument by the manufacturer’s manual.

Data analysis

Data was entered and analyzed using Statistical Package for Social Science (IBM Corp- Released 2011. IBM SPSS statistic Armonk, NY: IBM Corp). Descriptive statistics used to determine the mean, median and 95th reference range of each parameter. Chi-square, independent sample T-test and one-way ANOVAs employed to see the association between variables. All statistical tests were two tailed, and P.value< 0.05 considered statistical significant.

Ethical considerations

Ethical clearance was obtained from the research ethics review committee of Biotechnology Research Institute of Bahir Dar University. Written consent was obtained from each study participants to provide clinical specimen for screening and research purpose. The Amhara Regional State Health Bureau provided permission to collect blood sample from Gojjam zone. Therefore, the institutional research ethics review committee of the Amhara Regional State Health Bureau, Research and Technology Transfer Core Process approved ethical clearance to haematological parameters on blood samples. All participants diagnosed for any illness were treated accordingly. Information obtained at any course of the study was kept confidential.

Results

Participants’ characteristics

Table 1 depicts the characteristics of participants. A total of 481(246 females and 235 males) community healthy adults enrolled in the study. The age range was 18–65 years (Mean = 29.9). Two hundred eighty (58.2%) were highschool completed and above. The majority (97.1%) were urban residents. Most (84.2%) of the participants were from highland locations.
Table 1

Demographic characteristics of study participants.

VariablesFrequencyPercent
Sex
Male23548.9%
Female24651.1%
Age (years)
18–2525753.5
26–3511924.7
36–456012.5
46–55275.6
56–65183.7
Residency
Urban46797.1
Rural142.9
Educational status
Highschool completed and above28058.2
Illiterate & elementary completed20141.8
Income
≤1500 ETB41586.3
>500 ETB6613.7
Altitude
    Highland40584.2
    Lowland7615.8
Marital status
    Single24550.9
    Married23649.1

ETB: Ethiopian Birr

ETB: Ethiopian Birr

Haematological parameters and CD4+ T cells

As shown in Table 2, the overall95th percentile range of absolute CD4count was 396–1598 cells/mm3. The mean and 95th percentile range of absolute CD4+ T cells count for menwere854 cells/mm3 and414-1474 cells/mm3, respectively. For women, it was 1000 cells/mm3 and 436–1695 cells/mm3, respectively. Females had a significantly higher CD4+ T cells count than males (P = 0.002).
Table 2

Mean, median and 95% reference ranges values of haematological and CD4 + T cells in relation to sex and age profile of healthy adults.

VariablesParameters
WBC(103/mm3)RBC(106/mm3)Platelet(106/mm3)LymphoCyte %Neutrophil %MID %HB(g/dl)Hct%MCV(FL)MCH(pg)MCHC(g/dl)CD4(cells/mm3)
Sex
Female
Mean6.874.6923533.455.111.817.446.498.73131.51000
Median6.64.722732551014.946.198.73131.5974
95% range3.6–11.93.9–5.8120–37918–5434.5–71.86.1–26.312–1839–5590.3–10628–3430–33.2436–1695
Male
Mean6.695.2921231.956.111.917.175298.931.431.7854
Median6.655.3420831.1571116.852993132800
95% range3.5–10.93.9–6.2106–35215.1–53.435–73.86.8–2113.6–19.845–5990–10928–34.430–33.3414–1474
P-value0.40.0000.0000.110.290.940.870.0000.310.030.0070.002
Age (years)
18–25
Mean6.945.122231.856.711.2815.8649.8798.331.131.6938
Median6.75.12183058.210.4165098.53131.7863
26–35
Mean6.74.922733.155.212.42048.9898.931.331.7990
Median6.64.92193355.81115.9499931.132922
36–45
Mean6.24.9222.93552.811.919.5447.899.931.531.7935
Median6.14.8212355310.8154710031.532858
46–55
Mean7.14.822832.954.112.9714.947.599.731.131.4876
Median7.14.72273055.5131546100.53131.5808
56–65
Mean6.74.920532.951.215.915.1848.199.1318.5831
Median6.64.9212.531.546.713.3515.1548.399.1318822
P-value0.280.030.830.220.040.080.230.030.020.090.610.82
    Male and female combined
Mean6.784.69223.532.655.611.8515.649.298.831.231.6932
Median6.64.982183256.411.015.9499931.031.8869
95% range3.5–11.53.93–6.1113.9–37217.9–53.434.3–72.16.0–2312–1940–58.289.5–107.528–3430–33.2396–1598

MID: Basophil + Eosinophil+ Monocytes

MID: Basophil + Eosinophil+ Monocytes The overall (male and female combined) median and 95thpercentile range of RBCs were 4.69 x106cells/mm3 and 3.93–6.1 x106cells/mm3, respectively and for Hct were 49.2% and 40–58.2%, respectively. Moreover, the overall median and 95th percentile of Hb and platelets were 15.9g/dl and 15.69–17.84g/dl, respectively. The overall median of platelets was 218x106 cells/ mm3and its95th percentile was113.9–372 x106cells/mm3. The95th percentile ranges of RBC and Hct for men were3.9–6.2x106 cells/mm3 and 45–59%, respectively. The corresponding values for women were 3.9–5.8x106 cells/mm3 and 39–55%, respectively. The overall 95th percentile range for WBC was 3.5–11.5x103/mm3and for neutrophil was 34.3–72.1%(Table 2). The overall 95th percentile range of MCV, MCH and MCHC were 89.5–107.5 fl, 28–34pg and 30–33.2g/dl, respectively. The 95th percentile range of MCH and MCHC for men were28-34.4pg and 30–33.3g/dl, respectively. The corresponding values for women were 28–34 pg and30–33.2g/dl, respectively (Table 2). Higher mean absolute count of RBCs was observed in the youngest age groups compared to olders (P = 0.03). Males had significantly higher values of Hct (45–59%) than females (39–55%) (P = 0.002). Females had a significantly higher lower and upper platelet counts (120–379 x106cells/mm3) against 106–352 x10 6 cells/mm3 for males (P < 0.001) (Table 2). The Mean absolute counts of RBCs (P < 0.001) and values of MCHC (P = 0.002) were significantly lower in females than males. The mean absolute count of neutrophil (P = 0.04) and values of Hct (P = 0.03) were significantly lower in older compared to younger age groups. However, the mean absolute value of MCV was significantly lower in younger compared to older age groups (P = 0.02) (Table 2). Mean absolute count of RBCs and values of Hct were significantly higher in highschool completed and above compared to other participants (P<0.001) (Table 3). Both the lower and upper limit of platelets count was significantly lower in lowland than highland residents (P<0.001). Table 4 shows haematological reference ranges of highland and lowland residents.
Table 3

Mean, median and 95% reference range values of haematological and CD4+ T cells in relation to educational status of healthy adults.

Educational statusHigh school completed and aboveIlliterate & elementary completed
ParametersMedianMean95% rangeMedianMean95% rangeP.value
CD4+ (cells/mm38.599.43425–15978.959.41414–15650.97
Lymphocyte %31.332.3816.6–52.8323319–550.48
WBC (103/mm3)6.66.73.8–11.66.66.873.7–110.42
Neutrophils %57.256.1734.5–72.85554.7936.8–710.17
MID (%)10.411.236–2211.0012.687–230.01
RBC (106/ mm3)5.15.084.1–6.14.794.884.1–6.10.000
Hb (g/dl)16.0016.7712–1915.0018.0412–18.70.41
Hct (%)505040–5947.64840–57.60.000
MCV (Fl)9998.490–10710099.492–1070.16
MCH(pg)3131.128–3431.231.328–340.1
MCHC (g/dl)31.731.630–33.63231.630–330.78
Platelet (106/mm3)219226115–383217220119–3650.34

MID: Eosinophil+ basophile+ monocytes

Table 4

Mean, median and 95% range values of haematological and CD4+ T cells in healthy adults in relation to altitude.

AltitudeHighlandLowland
ParametersMedianMean95% rangemedianMean95% rangeP.value
CD4+ (cells/mm3)8.849.65425–15518.168.19415–15650.06
Lymphocyte %3232.918–52.82931.120–540.14
WBC (103/mm3)6.66.783.6–10.96.66.813.7–12.30.92
Neutrophils %56.655.534.5–72.85656.135–720.66
MID %10.411.76.0–23.312.0012.667–210.23
RBC (106/ mm3)5.005.014.1–6.14.874.924–60.26
Hb (g/dl)1617.6512.5–18.91515.3412–190.28
Hct %4949.240.5–584849.140–590.81
MCV (Fl)9998.690–10710099.790–1070.81
MCH(pg)3131.1828–343131.2728–340.67
MCHC (g/dl)31.931.6630–33.33131.4230–330.05
Platelet (106/mm3)223229118–383187191107–3520.000
MID: Eosinophil+ basophile+ monocytes The mean absolute count of platelets (P = 0.02), RBCs (P = 0.004) and values of Hct (P = 0.03) were significantly higher in residents with better monthly income compared to the counters. Table 5 shows haematological reference ranges of high and low income residents.
Table 5

Mean, median and 95% reference range values of haematological and CD4+ T cells in relation to monthly income in healthy adults.

Monthly income≤ 1500 ETB>1500 ETB
ParametersMedianMean95% rangeMedianMean95% rangeP.value
CD4+ (cells/mm3)8.699.26414–15518.681.04417–15970.17
Lymphocyte %31.232.3618–5433.934.1920.3–53.40.15
WBC (103/mm3)6.66.833.7–11.66.66.493.5–110.23
Neutrophils %56.855.7634.3–72.856.0054.7637–710.43
MID %1111.996–2310.0011.006–23.80.23
RBC (106/ mm3)4.954.974.0–6.15.235.194.1–6.10.004
Hb (g/dl)15.717.512–18.81616.112–18.90.52
Hct %4948.9840–5850.550.5739.9–580.03
MCV (Fl)9998.990–107.697.897.790–1070.54
MCH(pg)3131.2328–343130.9328.4–33.40.15
MCHC (g/dl)31.731.630–33.23231.730–33.60.41
Platelet (106/mm3)216220115–368232241124–3830.02

Discussion

In Ethiopia diagnostic and treatment health facilities employed haematological reference ranges adopted from western countries. At the same time there is no uniform usage of a hematological parameters reference ranges at the national level. Health care providers may obtain these reference ranges from pocket and text books, WHO reports, browsing internet and inserts from kits to compare the reported values. A variety of inserted kits are also available from several companies as a result of different health facilities uses various types of automated machines such as Mindray, Cell-DYn 1800, Sysmex (Xs-500i) and Cell-DYN Rubey. In spite of these, limited studies on haematological reference ranges have been reported among apparently healthy individuals attending hospitals either for blood donation, HIV counseling and testing [5, 14]. Therefore, this study presents community based haematological reference ranges in healthy adults of Ethiopia and may be a baseline for Federal Ministry of Health for future national reference range establishment. The mean absoluteCD4+ T cell counts in this study is not different from the reference ranges used in the study setting during the study period[13]. It is higher than previous studies in Ethiopia[1,5,14] and other African countries[4, 6]. Moreover, the lower and upper limit ofCD4+ T cells reference range in this study was not in agreement with the reference ranges approved for the national ART Guideline [13]. Furthermore, the reference range of females’ absolute CD4+ T cell counts in this study is higher than studies in Southern Tanzania [3], and Central Republic of Africa [15], while lower than a study done in Turkey [16] and similar with studies conducted in Kenya [7], and Botswana [8]. The reference ranges of males CD4+T cell counts in this study varies with the reference ranges of previous studies in Ethiopia [5], other African countries [4, 7, 8, 15] and Turkey [16]. This could be due to variations in study population, ethnicity, genetic, diet, geographical and environmental factors [6, 7]. The significantly higher mean and lower and upper limit of CD4+ T cell counts in females than males is comparable with earlier studies in Ethiopia [1,5,14] and Tanzania [4]. This could be due to the effect of sex hormones as peripheral lymphocytes have receptors to estrogen and androgen. The higher lower and upper limit of CD4+ T cells among highland compared to lowland residents in the present study might be associated with the effect of erythropoietin release following lower oxygen tension in highland areas cross-stimulating lymphoid progenitor cells. Therefore, federal ministry of health should update it with respect to gender and altitude based on the present and past reports of Ethiopia. In the present study, the lower and upper limit reference ranges of RBCs and Hct was higher than previous studies in Bahir Dar, Ethiopia [14], and Ghana [6]. The lower and upper reference ranges of males RBCs in this study is lower than reference range of males in Zimbabwe[17], South Tanzania [3], Botswana[8], and Wintrobes standard [18], but higher than other African countries [6, 7,19, 20]. On the other hand, the lower and upper reference ranges of females RBC and Hb in this study was higher than findings reported in Southern Tanzania [3], Ghana [6], Kenya [7], Botswana [8], and Rural Uganda[19]. This might be due to variation in ethnicity, altitude and dietary habits. Moreover, the lower and upper limit of RBC significantly higher in males than females and in younger than older age groups. In this study both the lower and upper limit of Hct is higher than reference ranges reported in African countries and used in the study community [Table 6]. The lower and upper limit Hct reference range of males and females in this study was higher than previous studies in Ethiopia [15], other African countries [6,7, 17, 19, 20], Wintrobes standard and currently used ranges in the study area [Table 6]. Moreover, the lower and upper limit reference ranges of Hct in both males and females are higher than Wintrobes standards [18], and currently used ranges in the study area [Table 6]. Therefore, federal ministry of health should consider such variations.
Table 6

Comparison of reference ranges values of the present study with other studies in Ethiopia, African and Western countries, 2016.

ParametersPresent studyAfrican countries (3–4)Ethiopia (1, 5, 14, 23)Western countries (10, 11, 16)Currently used (13)WintrobeStandard (18)
MaleFemaleTotalMaleFemaleBothMaleFemaleBothMaleFemaleBothMaleFemaleTotalMaleFemale
CD4+(Cells/mm3)414–1474436–1695396–1598342.8–1435.3403–1498.8361.8–1473.7324.7–1244.7415.3–1370.7351–1269.3449.3–1680.5--500–1300cell/mm3
WBC (103/mm3)3.5–10.93.6–11.93.5–11.53.16–7.653.48–7.983.04–9.083–103.1–10.93.1–9.7--4–11 4.3–10 4.3–10
RBC(106/mm3)3.9–6.23.9–5.83.93–6.14.35–6.123.72–5.513.83–6.183.46–6.183.24–5.562.95–5.83.77–5.53.58–5.04.2–63.6–5.63.8–5.14.5–6.34.2–5.5
Platelet(106/mm3)106–352120–379113.9–372141.6–357.2154.8–401.4114–388.384–38694.4–404.8101.7–428.3122–397142–377.5140–440140–440140–440150–450150–450
HB(g/dl)13.6–19.812–1812–1912.6–16.710.1–14.511.2–17.211.4–1810.6–16.49.95–17.5512.8–16.711.64–14.8312–1812–1812–1814–1812–16
HCT %45–5939–5540–58.235.5–49.830.3–44.330.6–49.634.5–54.931–50.628.45–51.737.4–50.534.8–47.734–5434–5434–5441–5137–47
MCV (fl)90–10990.3–10689.5–107.575.5–96.473.3–95.169.7–97.668.45–100.269.1–98.9569.8–99.9NANA81–10381–10381–103NANA
MCH (pg)28–34.428–3428–3423.9–32.324.7–32.122.7–33.222.5–34.621.2–35.519.75–36.2NANA27–3227–3227–32NANA
MCHC(g/dl)30–33.330–33.230–33.230.9–35.330.5–34.930.2–35.427.9–37.224.1–37.128.05–37.1NANA32–3632–3632–36NANA
The median, lower and upper limit of Hb reference range in this study conforms to a study conducted in Ethiopia [14], and reference ranges used in the study hospital [Table 6]. However; it was higher than studies reported in Ghana [6], rural Uganda [19] and Iran [21]. In the present study the lower and upper limit of RBCs and Hct in males are significantly higher than females (P < 0.001). This conforms to earlier studies in Ethiopia [5, 15], African countries [6–8, 17, 20, 22], Gaza strip [9] and Wintrobes standard [18]. This could be due to loss of blood in menstrual cycles in females and the influence of differences in the hormone androgen between females and males on their erythropoiesis. Moreover, the median RBCs and Hct values were significantly higher among highschool completed and above compared to other participants (P < 0.001). The highest mean and median values of RBC were found in the youngest age groups. However, comparison was not made due to paucity of data reported before. In this study, both the lower and upper limit of WBC reference ranges was higher than earlier studies in Ethiopia [1,14, 23] and African countries [3, 6,7, 22] while lower than reports from Western countries [10, 11, 16] and conforms to ranges used in the study community [Table 6]. Moreover, the lower and upper limit of WBC reference ranges of both males and females was higher than earlier studies in Africa [3, 6, 7] and Ethiopia [1, 14, 23]. Moreover, the overall median and reference ranges of neutrophil count of this study is higher than previous studies in Ethiopia [1, 5, 14], Southern Tanzania[3], and Zimbabwe[17], while similar with studies in Gondar[23], and multiethnic population in Malaysia[9]. In this study statistical significant difference on the reference intervals of neutrophilis between males and females was not found. Similar reports have been found in Bahir Dar, Ethiopia [14], Southern Tanzania [3], Botswana [7], and Zimbabwe [17]. However, in Nigeria [20], males had significantly higher neutrophilic interval than females. The lower and upper limit of platelet reference ranges in this study is lower than ranges used in the study community [Table 6] and Wintrobes standard [18]. The overall median and upper limit of platelets reference range in this study is lower than previous studies in Ethiopia [1, 14] and other African countries [3, 6,7]. However, its lower limit is higher than the above studies [1, 3, 6, 7, 14]. Moreover, the median, lower and upper limits of male’s platelets reference ranges in the present study are lower than previous studies in Botswana [8], Zimbabwe [17], Gaza strip [9] and UK [10]. It is also significantly lower compared to reference ranges used in the study setting (Table 6) and Wintrobes standard [18]. Furthermore, the median and reference ranges of female platelets in this study also lower than previous studies in Southern Tanzania [3], Botswana [7], Zimbabwe [17], and Gaza strip [9]. Dietary, environmental and genetic factors might contribute for the lower platelet counts compared to Wintrobes standard and other countries. In this study, both the lower and upper limits of platelets were significantly higher in females than males. This was in agreement with studies conducted in Ethiopia [1, 14] and Northern Tanzania [22]. Higher platelet counts in females compared to males might be due to the variations in hormone types and concentrations in the different sexes and the effect of erythropoietin release in response to regular menustration cross- stimulating megakaryopoiesis. Moreover, both the lower and upper limit of platelets was significantly higher among highland compared to lowland residents (P< 0.0001) and among those who had better compared to lower monthly income residents (P = 0.03). This might have a direct or indirect influence on the proliferation of megakaryocytes. The lower and upper limit of MCV and MCH reference ranges in the present study is higher than earlier studies in Ethiopia [14, 23] and other African countries [3, 6, 7, 17] and ranges used in the study area during data collection [Table 6]. However, the reference range of MCHC in this study conforms to previous studies in Ethiopia [14], Southern Tanzania [3], Ghana [6], and Zimbabwe[17]. In this study the mean values of MCH and MCHC was significantly higher in males than females while the mean values of MCV was not significantly associated with gender difference. This was similar with previous studies in Botswana [8], and Zimbabwe [17]. However, significantly higher values of MCV in males than females reported in Ghana [6], and Zimbabwe [17]. Non-significant difference in MCH and MCHC values was also reported in Ghana [6], and Nigeria [20]. In this study the mean absolute count of RBCs, platelets and Hct significantly higher among residents with better monthly income compared to others (P = 0.03). This might be due to the influence of diet on the process of blood cell formation. However, due to lack of data comparison was unable to make.

Conclusions

Some of the haematological and CD4+T cells reference ranges of healthy adults in Gojjam showed variations with reference ranges used in the study community, reported in Africa, Western countries and Wintrobes standard. Difference in altitude and gender significantly affects the reference intervals. Therefore, considering gender, altitude and residency further studies in other parts of Ethiopia are recommended to establish reference intervals for Ethiopian population.
  17 in total

1.  Reference ranges of lymphocyte subsets of healthy adults in Turkey.

Authors:  Akgun Yaman; Salih Cetiner; Filiz Kibar; Yeşim Taşova; Gulşah Seydaoğlu; Ismail H Dündar
Journal:  Med Princ Pract       Date:  2005 May-Jun       Impact factor: 1.927

2.  Immunohematological reference ranges for adults from the Central African Republic.

Authors:  Didier Menard; Marie Joelle Mandeng; Mesmin Bem Tothy; Eric Kassa Kelembho; Gérard Gresenguet; Antoine Talarmin
Journal:  Clin Diagn Lab Immunol       Date:  2003-05

3.  Laboratory reference values for healthy adults from southern Tanzania.

Authors:  Elmar Saathoff; Philine Schneider; Vera Kleinfeldt; Steffen Geis; Dennis Haule; Leonard Maboko; Eleuter Samky; Mark de Souza; Merlin Robb; Michael Hoelscher
Journal:  Trop Med Int Health       Date:  2008-03-06       Impact factor: 2.622

4.  Population-based biochemistry, immunologic and hematological reference values for adolescents and young adults in a rural population in Western Kenya.

Authors:  Clement Zeh; Pauli N Amornkul; Seth Inzaule; Pascale Ondoa; Boaz Oyaro; Dufton M Mwaengo; Hilde Vandenhoudt; Anthony Gichangi; John Williamson; Timothy Thomas; Kevin M Decock; Clyde Hart; John Nkengasong; Kayla Laserson
Journal:  PLoS One       Date:  2011-06-21       Impact factor: 3.240

5.  Haematological and biochemical reference values for healthy adults in the middle belt of Ghana.

Authors:  David K Dosoo; Kingsley Kayan; Dennis Adu-Gyasi; Evans Kwara; Josephine Ocran; Kingsley Osei-Kwakye; Emmanuel Mahama; Stephen Amenga-Etego; Philip Bilson; Kwaku P Asante; Kwadwo A Koram; Seth Owusu-Agyei
Journal:  PLoS One       Date:  2012-04-27       Impact factor: 3.240

6.  Normal laboratory reference intervals among healthy adults screened for a HIV pre-exposure prophylaxis clinical trial in Botswana.

Authors:  Tebogo M Segolodi; Faith L Henderson; Charles E Rose; Kyle T Turner; Clement Zeh; Peter N Fonjungo; Richard Niska; Clyde Hart; Lynn A Paxton
Journal:  PLoS One       Date:  2014-04-08       Impact factor: 3.240

7.  Population based haematology reference ranges for old people in rural South-West Uganda.

Authors:  Joseph O Mugisha; Janet Seeley; Hannah Kuper
Journal:  BMC Res Notes       Date:  2016-09-07

8.  Adult Hematology and Clinical Chemistry Laboratory Reference Ranges in a Zimbabwean Population.

Authors:  Wadzanai P Samaneka; Gibson Mandozana; Willard Tinago; Nehemiah Nhando; Nyaradzo M Mgodi; Mutsawashe F Bwakura-Dangarembizi; Marshall W Munjoma; Zvenyika A R Gomo; Zvavahera M Chirenje; James G Hakim
Journal:  PLoS One       Date:  2016-11-03       Impact factor: 3.240

9.  Hematoimmunological profile at gilgel gibe field research center, southwest ethiopia.

Authors:  Abraham Haileamlak; Ayalew T Muluneh; Fessahaye Alemseged; Fasil Tessema; Kifle Woldemichael; Makonnen Asefa; Yoseph Mamo; Solomon Tamiru; Gemeda Abebe
Journal:  Ethiop J Health Sci       Date:  2012-08

10.  Haematological reference intervals in a multiethnic population.

Authors:  Angeli Ambayya; Anselm Ting Su; Nadila Haryani Osman; Nik Rosnita Nik-Samsudin; Khadijah Khalid; Kian Meng Chang; Jameela Sathar; Jay Suriar Rajasuriar; Subramanian Yegappan
Journal:  PLoS One       Date:  2014-03-18       Impact factor: 3.240

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  7 in total

1.  Reference Intervals for Absolute and Percentage CD4+ T Lymphocytes among an Apparently Healthy Population in Addis Ababa, Ethiopia.

Authors:  Dinkenesh Chalchisa; Yohannes Belay; Endalkachew Befekadu; Melkitu Kassaw; Letebrhan G/Egzeabher; Gebremedhin Gebremicael; Boki Lengiso; Dawit Chala; Zewdineh Sahlemariam; Estifanos Kebede; Ebba Abate; Aster Tsegaye
Journal:  Int J Gen Med       Date:  2022-06-01

2.  Determining hematological, biochemical and immunological reference values in healthy adults with high-risk for HIV acquisition in Mozambique.

Authors:  Victória Cumbane; Michelle Imbach; Raquel Matavele Chissumba; Ivalda Macicame; Leigh Anne Eller; John Lawlor; Mark Milazzo; Qun Li; Trevor Crowell; Mirna Mutombene; Onélia Guiliche; Edna Viegas; Chiaka Nwoga; Adam Yates; Nelson Michael; Merlin Robb; Christina S Polyak; Ilesh V Jani; Nilesh Bhatt
Journal:  PLoS One       Date:  2020-04-30       Impact factor: 3.240

3.  Hematological reference intervals for adult population of Dire Dawa town, East Ethiopia.

Authors:  Teklay Mengistu Sissay; Melatwork Tibebu; Tagesachew Wasihun; Aster Tsegaye
Journal:  PLoS One       Date:  2021-02-16       Impact factor: 3.240

4.  Haematological reference intervals for healthy adults in Bamenda, Cameroon.

Authors:  Victor N Fondoh; Richard M Fondoh; Charles N Awasom; Pefoule L Edith; Winlove A Ntungwen; Bong Roland; Rebeca Enow-Tanjong; Patrick Njukeng; Judith Shang; Egbe P Egbengu; Talkmore Maruta; Akazong Etheline; Robert Leke; Ayuk Leo; Denis Nsame
Journal:  Afr J Lab Med       Date:  2020-12-21

Review 5.  A Critical Review on the Standardization and Quality Assessment of Nonfunctional Laboratory Tests Frequently Used to Identify Inborn Errors of Immunity.

Authors:  Sandro Félix Perazzio; Patricia Palmeira; Dewton Moraes-Vasconcelos; Andréia Rangel-Santos; João Bosco de Oliveira; Luis Eduardo Coelho Andrade; Magda Carneiro-Sampaio
Journal:  Front Immunol       Date:  2021-11-09       Impact factor: 7.561

6.  Reference ranges of T lymphocyte subsets by single-platform among healthy population in southwest China.

Authors:  Bin Wei; Ying Guo; Liangjun Zhang; Huixiu Zhong; Qiang Miao; Lin Yan; Yangjuan Bai; Weihua Feng; Weiping Liu; Qian Niu; Yi Li
Journal:  BMC Immunol       Date:  2021-12-20       Impact factor: 3.615

7.  Reference intervals for hematology test parameters from apparently healthy individuals in southwest Ethiopia.

Authors:  Lealem Gedefaw Bimerew; Tesfaye Demie; Kaleab Eskinder; Aklilu Getachew; Shiferaw Bekele; Waqtola Cheneke; Zewdineh Sahlemariam; Wondimagegn Adisu; Yaregal Asres; Tilahun Yemane; Girum Tesfaye; Getnet Tesfaw; Esayas Kebede Gudina; Zeleke Mekonnen
Journal:  SAGE Open Med       Date:  2018-10-29
  7 in total

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