Method for detecting atopic dermatitis in infants and young children
By measuring TARC mRNA in skin surface lipids, the method provides a non-invasive and accurate means to detect atopic dermatitis in infants, addressing the limitations of existing methods and improving diagnostic accuracy.
Patent Information
- Application Number
- JP2021151505
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-16
- Filing Date
- 2021-09-16
- Publication Date
- 2025-09-24
- Estimated Expiration
- 2041-09-16
AI Technical Summary
Existing methods for detecting atopic dermatitis in infants have low sensitivity and specificity, particularly in children under two years of age, and there is a need for a non-invasive method to accurately identify mild and moderate cases.
Measuring the expression levels of TARC mRNA in skin surface lipids (SSL) using oligonucleotides or antibodies to detect TARC gene or its expression product, which serves as a marker for atopic dermatitis.
Enables early and accurate detection of atopic dermatitis in infants with high sensitivity and specificity, particularly distinguishing between healthy and affected infants, and mild to moderately affected infants.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for detecting infant atopic dermatitis using an infant atopic dermatitis marker derived from lipids on the skin surface. [Background technology]
[0002] Atopic dermatitis (hereinafter also referred to as "AD") is an eczematous skin disease that primarily occurs in people with a predisposition to atopy. Typical symptoms of atopic dermatitis include chronic and recurrent itching, rash, erythema, etc., occurring bilaterally and contralaterally, as well as hypokeratosis, impaired barrier function, and dry skin. Most cases of atopic dermatitis occur in infants and young children, and tend to improve with age. However, in recent years, adult-onset and intractable atopic dermatitis have also been increasing.
[0003] It is known that newborns and infants with a genetic predisposition to allergies and atopy develop various allergic diseases as they age, such as infantile eczema, atopic dermatitis, food allergies, and even bronchial asthma and allergic rhinitis (the allergic march). As such, the development of one allergic disease increases the likelihood of developing another, and treatment for these diseases often requires a long period of time, so it is necessary to prevent the onset of allergic diseases in infancy.
[0004] Methods for detecting atopic dermatitis using biomarkers have been proposed, including the detection of peripheral blood eosinophil counts, serum total IgE levels, LDH (lactate dehydrogenase) levels, and serum thymus and activation-regulated chemokine (TARC) and squamous cell carcinoma antigen 2 (SCCA2) (Non-Patent Documents 1, 2, and 3). Among these, serum TARC has been reported to reflect the disease progression even in pediatric atopic dermatitis (Non-Patent Document 4). In this report, it was reported that the sensitivity and specificity of AD diagnosis using serum TARC as an indicator was lower in children under 2 years of age than in children aged 2 years or older.
[0005] Meanwhile, technologies have been developed to examine the current and future physiological state of the human body by analyzing nucleic acids such as DNA and RNA in biological samples. Living nucleic acids can be extracted from body fluids such as blood, secretions, tissues, and the like. Recently, it has been reported that RNA contained in skin surface lipids (SSL) can be used as a sample for biological analysis, and that marker genes for the epidermis, sweat glands, hair follicles, and sebaceous glands can be detected from SSL (Patent Document 1). Little concrete information has been obtained about the relationship between the expression of marker genes in SSL and those in body fluids such as blood, and it is unclear whether disease markers in serum are equally expressed in SSL and can serve as markers with the same accuracy. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] International Publication No. 2018 / 008319 [Non-patent literature]
[0007] [Non-Patent Document 1] Sugawara et al., Allergy (2002) 57:180-181 [Non-patent document 2] Ohta et al., Ann Clin Biochem.(2012) 49:277-84 [Non-patent document 3] Kato et al., Journal of the Japanese Dermatological Association (2018) 128: 2431-2502 [Non-patent document 4] Fujisawa et al., Journal of the Japanese Society of Pediatric Allergy (2005) 19(5): 744-757 Summary of the Invention [Problem to be solved by the invention]
[0008] The present invention relates to providing a method for detecting atopic dermatitis in infants using lipids on the skin surface. [Means for solving the problem]
[0009] The inventors have found that the expression levels of TARC mRNA contained in SSL collected from infants with atopic dermatitis differ significantly from those of infants with normal skin and no allergic predisposition, and that this can be used as an indicator to detect infant atopic dermatitis, and is particularly useful for detecting mild and moderate atopic dermatitis.
[0010] That is, the present invention relates to the following 1) and 2). 1) A method for detecting infant atopic dermatitis in a subject, comprising a step of measuring the expression level of the TARC gene or its expression product in lipids on the skin surface collected from the subject. 2) A test kit for detecting infantile atopic dermatitis used in the method of 1), which contains an oligonucleotide that specifically hybridizes with the gene or an antibody that recognizes the expression product of the gene. [Effects of the Invention]
[0011] According to the present invention, it is possible to detect atopic dermatitis in infants at an early stage in a simple and non-invasive manner with high accuracy, sensitivity and specificity. [Brief explanation of the drawings]
[0012] [Figure 1] TARC RNA expression levels in SSL of healthy children (HL) and infants with atopic dermatitis (AD). [Figure 2] TARC RNA expression levels in SSL of healthy adult subjects (HL) and adult patients with atopic dermatitis (AD). [Figure 3] TARC protein levels in serum from healthy adult subjects (HL) and adult patients with atopic dermatitis (AD). DETAILED DESCRIPTION OF THE INVENTION
[0013] All patents, non-patent documents, and other publications cited herein are hereby incorporated by reference in their entirety.
[0014] In the present invention, the term "nucleic acid" or "polynucleotide" refers to DNA or RNA. DNA includes cDNA, genomic DNA, and synthetic DNA, and "RNA" includes total RNA, mRNA, rRNA, tRNA, non-coRNA, and the like. This includes both ding RNA and synthetic RNA.
[0015] In the present invention, the term "gene" includes double-stranded DNA including human genomic DNA, single-stranded DNA (positive strand) including cDNA, single-stranded DNA (complementary strand) having a sequence complementary to the positive strand, and fragments thereof, and refers to DNA in which some biological information is contained in the sequence information of the bases that make up the DNA. Furthermore, the "gene" in question includes not only "genes" represented by a specific base sequence, but also nucleic acids encoding their homologues (i.e., homologs or orthologs), variants such as genetic polymorphisms, and derivatives. In the present invention, "TARC" refers to a thymus and activation-regulated chemokine, a type of chemokine with leukocyte chemotactic activity, produced by epidermal keratinocytes, dendritic cells, lymphocytes, vascular endothelial cells, etc., and is also known as chemokine ligand 17 (CCL17). The TARC gene (mRNA) is registered in NCBI under the reference sequence number "NM_002987.3."
[0016] In the present invention, the term "expression product" of a gene encompasses both transcription products and translation products of the gene. A "transcription product" is RNA generated by transcription from a gene (DNA), and a "translation product" refers to a protein encoded by the gene that is translated and synthesized based on the RNA.
[0017] In the present invention, "atopic dermatitis" refers to a disease whose main pathogenic factor is an itchy eczema that repeatedly worsens and remits, and many of its patients are said to have a predisposition to atopy. Predisposition to atopy includes i) a family history or medical history (one or more of the following diseases: bronchial asthma, allergic rhinitis / conjunctivitis, and atopic dermatitis), or ii) a predisposition to produce IgE antibodies.
[0018] In the present invention, the term "infant" broadly refers to a "child" before the onset of secondary puberty, specifically a concept including children under 12 years of age, and preferably refers to infants from age 0 to the age of entering school, specifically infants from age 0 to 5 years. Atopic dermatitis in infants is characterized by skin rash that begins on the head and face in infancy and often progresses to the trunk and limbs. In early childhood, the facial rash diminishes, and the rash appears mainly on the neck and joints of the limbs. Regarding the differences between infant and adult atopic dermatitis, it has been reported in recent years that adult atopic dermatitis exhibits abnormal epidermal keratinization associated with chronic inflammatory abnormalities compared to infant atopic dermatitis (Journal of Allergy and Clinical Immunology, Volume 141, Issue 6, June 2018, Pages 2094-2106), but the number of reports is limited and the differences are unclear.
[0019] The degree of progression (severity) of atopic dermatitis is classified according to the condition of the rash, for example, as no symptoms, slight, mild (mild), moderate (moderate), or severe (severe). The severity classification is, for example, based on the Eczema Area and Severity Index (EASI).<Exp Dermatol, 2001; 10: 11-18.> ), Investigator's Global Assessment (“IGA”)<J Am Acad Dermatol, 2016; 74: 288-94.> ) are well known. For example, the EASI is a score ranging from 0 to 72 calculated based on the four symptom scores (erythema, edema / infiltration / papules, excoriation, and lichenification) for each evaluation site (head and neck, trunk, upper limbs, and lower limbs) and the percentage (%) of the area of the entire evaluation site that each of these symptoms represents. In the IGA, the evaluator (physician or researcher) comprehensively evaluates the condition of the skin rash on the whole body or a specific evaluation site and assigns a five-point scale: "no symptoms," "mild," "mild," "moderate," and "severe." A six-point scale, including "most severe," may also be used. IGA scores can be converted to an ordinal scale, such as "no symptoms = 0," "mild = 1," "mild = 2," "moderate = 3," "severe = 4," and "most severe = 5."
[0020] In the present invention, "detection of infant atopic dermatitis" includes not only determining the presence (with symptoms) or absence (without symptoms) of infant atopic dermatitis, but also determining the degree of progression of infant atopic dermatitis, i.e., "mild," "moderate," and "severe." Preferably, detection of each of "asymptomatic," "mild," and "moderate" is included. Here, "mild" refers to a condition characterized by dryness, mild erythema, scaling, etc., and corresponds to an EASI score of greater than 0 and less than 6, or an IGA score of 2. "Moderate" refers to a condition characterized by moderate to severe erythema, scaling, a few papules, and excoriation, and corresponds to an EASI score of 6 or greater but less than 23, or an IGA score of 3. "Severe" refers to a condition characterized by severe swelling / edema / infiltration or lichenification accompanied by erythema, multiple papules, severe scaling, crusting, small blisters, erosion, numerous excoriations, prurigo nodules, etc., and corresponds to an EASI score of 23 or greater but less than 72, or an IGA score of 4. "No symptoms" refers to remission or near remission with no symptoms, at the same level as a healthy child. In addition, when assessing "no symptoms," "mild," "moderate," and "severe" using the EASI score or IGA score, the range of scores used as the basis for each assessment is not limited to the above and can be determined as appropriate.
[0021] In the present invention, the term "detection" can be replaced with the terms "examination," "measurement," "determination," or "evaluation assistance." Note that, in this specification, the terms "detection," "examination," "determination," or "evaluation" do not include determination, evaluation, or diagnosis by a physician.
[0022] As shown in the Examples below, RNA expression analysis in SSL was performed on 16 children with atopic dermatitis (aged 6 months to 5 years), including 20 healthy children, 9 children diagnosed with mild EASI severity (score: greater than 0 and less than 6), and 7 children judged to have moderate EASI severity (score: 6 or greater and less than 23).The results showed that TARC gene expression increased in a severity-dependent manner. Furthermore, based on the RNA expression data of TARC derived from SSL in healthy, mildly and moderately ill children, the accuracy of discriminating between healthy and mild to moderately ill children, healthy and mildly ill children, and mild and moderately ill children was examined. The accuracy rates ((true positives + true negatives) / total) were 89%, 79% and 87%, respectively, demonstrating that highly accurate discrimination is possible. Furthermore, according to the method of the present invention, even when targeting infants under the age of two, who were thought to be difficult to distinguish using conventional methods, the accuracy of distinguishing between healthy and mild to moderately ill children, healthy and mildly ill children, and mild and moderately ill children was 75%, 70%, and 90%, respectively, making it possible to distinguish well in all cases.
[0023] Therefore, the TARC gene or its expression product in SSL is useful as a marker for detecting infant atopic dermatitis, and is particularly useful as a marker for distinguishing between "no symptoms of infant atopic dermatitis," "mild or moderate infant atopic dermatitis," "mild infant atopic dermatitis," and "moderate infant atopic dermatitis." In the present invention, the TARC gene (hereinafter also referred to as "target gene") that can be used as a detection marker for infantile atopic dermatitis also includes genes having a nucleotide sequence substantially identical to that of the DNA constituting the TARC gene, as long as they can be used as a biomarker for detecting infantile atopic dermatitis. Here, "substantially identical" means, for example, that when searched using the homology calculation algorithm NCBI BLAST under the conditions of expectation value = 10; gaps allowed; filtering = ON; match score = 1; mismatch score = -3, the nucleotide sequence has 90% or more, preferably 95% or more, more preferably 98% or more, and even more preferably 99% or more identity with the nucleotide sequence of the DNA constituting the gene.
[0024] The method for detecting infant atopic dermatitis of the present invention comprises the step of measuring the expression level of the TARC gene or its expression product in SSL collected from a subject.
[0025] In the present invention, the subject from which SSL is collected is not particularly limited in terms of gender or race as long as it is an infant, but is preferably an infant in need of detection of atopic dermatitis or an infant suspected of developing atopic dermatitis. Examples of such subjects include infants who have developed atopic dermatitis, infants with itchy eczema, infants who are determined to have a predisposition to atopy based on a family history or medical history, and infants who are predisposed to producing IgE antibodies.
[0026] Here, "skin surface lipids (SSL)" refers to the fat-soluble fraction present on the surface of the skin, and is sometimes called sebum. Generally, SSL mainly contains secretions from exocrine glands such as sebaceous glands in the skin, and is present on the skin surface in the form of a thin layer that covers the skin surface. SSL contains RNA expressed in skin cells (see Patent Document 1). In this specification, unless otherwise specified, "skin" is a general term for a region including the stratum corneum, epidermis, dermis, hair follicles, and tissues such as sweat glands, sebaceous glands, and other glands.
[0027] Any method commonly used for recovering or removing SSL from skin can be used to collect SSL from a subject's skin. Preferably, SSL absorbent materials, SSL adhesive materials, or devices for scraping SSL from skin, as described below, can be used. The SSL absorbent material or SSL adhesive material can be any material that has affinity for SSL, including polypropylene and pulp. More detailed examples of procedures for collecting SSL from skin include absorbing SSL into sheet-like materials such as oil blotting paper or oil blotting film, adhering SSL to glass plates or tape, or scraping SSL off with a spatula or scraper. To improve SSL adsorption, SSL absorbent materials pre-soaked with a highly lipid-soluble solvent may be used. However, SSL absorbent materials preferably contain low amounts of highly water-soluble solvents or moisture, since the presence of highly water-soluble solvents or moisture inhibits SSL adsorption. It is preferable to use SSL absorbent materials in a dry state. The area of the skin from which SSL is collected is not particularly limited, and may be any area of the body such as the head, face, neck, trunk, limbs, etc., with areas with high sebum secretion, such as facial skin, being preferred.
[0028] The RNA-containing SSL collected from a subject may be stored for a certain period of time. To minimize degradation of the RNA contained in the collected SSL, it is preferable to store the collected SSL under low-temperature conditions as soon as possible after collection. The temperature conditions for storing the RNA-containing SSL in the present invention may be 0°C or lower, preferably -20±20°C to -80±20°C, more preferably -20±10°C to -80±10°C, even more preferably -20±20°C to -40±20°C, even more preferably -20±10°C to -40±10°C, even more preferably -20±10°C, and even more preferably -20±5°C. The period for storing the RNA-containing SSL under low-temperature conditions is not particularly limited, but is preferably 12 months or less, for example, 6 hours to 12 months, more preferably 6 months or less, for example, 1 day to 6 months, even more preferably 3 months or less, for example, 3 days to 3 months.
[0029] In the present invention, the expression level of the target gene, the TARC gene, or its expression product can be measured using RNA, DNA encoding the RNA, a protein encoded by the RNA, a molecule that interacts with the protein, a molecule that interacts with the RNA, or a molecule that interacts with the DNA, with RNA being preferred and mRNA being more preferred. Here, molecules that interact with RNA, DNA, or protein include DNA, RNA, proteins, polysaccharides, oligosaccharides, monosaccharides, lipids, fatty acids, and their phosphorylations, alkylations, and sugar adducts, as well as complexes of any of the above. Furthermore, the expression level comprehensively refers to the expression amount and activity of the gene or expression product.
[0030] In a preferred embodiment of the method of the present invention, the expression level of mRNA contained in SSL is analyzed, preferably by converting the RNA into cDNA by reverse transcription, and then measuring the cDNA or its amplification product. RNA extraction from SSL can be performed using methods commonly used for RNA extraction or purification from biological samples, such as the phenol / chloroform method, AGPC (acid guanidinium chloride) method, etc. Methods that can be used include the ammonium thiocyanate-phenol-chloroform extraction method, methods using columns such as TRIzol (registered trademark), RNeasy (registered trademark), and QIAzol (registered trademark), methods using special silica-coated magnetic particles, methods using Solid Phase Reversible Immobilization magnetic particles, and extraction using commercially available RNA extraction reagents such as ISOGEN.
[0031] For the reverse transcription, a primer targeting the specific RNA to be analyzed may be used, but for more comprehensive nucleic acid storage and analysis, random primers are preferably used. A general reverse transcriptase or reverse transcription reagent kit can be used for the reverse transcription. Highly accurate and efficient reverse transcriptases or reverse transcription reagent kits are preferably used, such as M-MLV Reverse Transcriptase and its variants, or commercially available reverse transcriptases or reverse transcription reagent kits, such as the PrimeScript® Reverse Transcriptase series (Takara Bio Inc.) and the SuperScript® Reverse Transcriptase series (Thermo Scientific). SuperScript® III Reverse Transcriptase and SuperScript® VILO cDNA Synthesis kit (both Thermo Scientific) are preferably used. The temperature of the extension reaction in the reverse transcription is preferably adjusted to 42°C±1°C, more preferably 42°C±0.5°C, and even more preferably 42°C±0.25°C, while the reaction time is preferably adjusted to 60 minutes or more, more preferably 80 to 120 minutes.
[0032] When targeting RNA, cDNA, or DNA, the method for measuring the expression level can be selected from the following: PCR using DNA that hybridizes to these as a primer, nucleic acid amplification methods such as real-time RT-PCR, multiplex PCR, SmartAmp, and LAMP; hybridization methods using nucleic acids that hybridize to these as probes (DNA chips, DNA microarrays, dot blot hybridization, slot blot hybridization, Northern blot hybridization, etc.); methods for determining base sequences (sequencing); or a combination of these.
[0033] PCR may be performed using a primer pair targeting the target TARC DNA to amplify only the TARC DNA, or using multiple primer pairs to simultaneously amplify multiple DNAs, including the TARC DNA. RT-PCR is an example of a method for amplifying only the target DNA, while multiplex PCR is an example of a method for simultaneously amplifying multiple DNAs. Multiplex PCR is a method for simultaneously amplifying multiple gene regions by simultaneously using multiple primer pairs in a PCR reaction system. Multiplex PCR can be performed using a commercially available kit (e.g., Ion AmpliSeq Transcriptome Human Gene Expression Kit; Life Technologies Japan, Inc.). The temperatures for the annealing and extension reactions in the PCR depend on the primers used and cannot be generalized; however, when using the multiplex PCR kit described above, the temperatures are preferably 62°C ± 1°C, more preferably 62°C ± 0.5°C, and even more preferably 62°C ± 0.25°C. Therefore, in the PCR, the annealing and extension reactions are preferably carried out in one step. The time for the annealing and extension reaction steps can be adjusted depending on the size of the DNA to be amplified, but is preferably 14 to 18 minutes. The conditions for the denaturation reaction in the PCR can be adjusted depending on the DNA to be amplified, but are preferably 95 to 99°C for 10 to 60 seconds. Reverse transcription and PCR at the temperatures and times described above can be carried out using a thermal cycler commonly used for PCR.
[0034] The purification of the reaction product obtained by the PCR is preferably carried out by size separation of the reaction product. By size separation, the target PCR reaction product can be separated from primers and other impurities contained in the PCR reaction solution. Size separation of DNA can be carried out using, for example, a size separation column, a size separation chip, magnetic beads usable for size separation, etc. Preferred examples of magnetic beads usable for size separation include Solid Phase Reversible Immobilization (SPRI) magnetic beads such as Ampure XP.
[0035] The purified PCR reaction product may be further processed as necessary for subsequent quantitative analysis. For example, for DNA sequencing, the purified PCR reaction product may be prepared in an appropriate buffer solution, the PCR primer region contained in the PCR-amplified DNA may be cleaved, or an adapter sequence may be added to the amplified DNA. For example, the purified PCR reaction product may be prepared in a buffer solution, and the amplified DNA may be subjected to PCR primer sequence removal and adapter ligation. The resulting reaction product may then be amplified as needed to prepare a library for quantitative analysis. These operations may be performed, for example, using the 5x VILO RT Reaction Mix included with the SuperScript® VILO cDNA Synthesis kit (Life Technologies Japan, Inc.), and the 5x Ion AmpliSeq HiFi Mix and Ion AmpliSeq Transcriptome Human Gene Expression Core Panel included with the Ion AmpliSeq Transcriptome Human Gene Expression Kit (Life Technologies Japan, Inc.), according to the protocols included with each kit.
[0036] When measuring the expression level of the target TARC gene or a nucleic acid derived therefrom using Northern blot hybridization, for example, probe DNA is first labeled with a radioisotope, a fluorescent substance, or the like, and then the resulting labeled DNA is hybridized with RNA derived from a biological sample that has been transferred to a nylon membrane or the like in a conventional manner. The resulting double strand of labeled DNA and RNA is then measured by detecting the signal derived from the label.
[0037] When measuring the expression level of the target TARC gene or a nucleic acid derived therefrom using RT-PCR, for example, cDNA is first prepared from RNA derived from a biological sample according to standard methods, and then hybridized with a pair of primers (a positive strand that binds to the cDNA (-strand) and a reverse strand that binds to the + strand) prepared to amplify the target gene TARC of the present invention using this as a template. PCR is then performed according to standard methods, and the resulting amplified double-stranded DNA is detected. The amplified double-stranded DNA can be detected by detecting labeled double-stranded DNA produced by PCR using primers previously labeled with RI, a fluorescent substance, or the like.
[0038] When measuring the expression level of the target TARC gene or a nucleic acid derived therefrom using a DNA microarray, for example, an array having at least one type of nucleic acid (cDNA or DNA) derived from the target gene of the present invention immobilized on a support can be used, labeled cDNA or cRNA prepared from mRNA can be bound to the microarray, and the label on the microarray can be detected to measure the expression level of mRNA. The nucleic acid immobilized on the array may be any nucleic acid that hybridizes specifically (i.e., substantially only to the target nucleic acid) under stringent conditions. For example, it may be a nucleic acid having the entire sequence of the target gene of the present invention, or a nucleic acid consisting of a partial sequence. Here, a "partial sequence" refers to a nucleic acid consisting of at least 15 to 25 bases. Typical stringent conditions include washing conditions of approximately 1×SSC, 0.1% SDS, and 37°C. More stringent hybridization conditions include approximately 0.5×SSC, 0.1% SDS, and 42°C. Even more stringent hybridization conditions include approximately 0.1×SSC, 0.1% SDS, and 65°C. Hybridization conditions are described in, for example, J. Sambrook et al., Molecular Cloning: A Laboratory Manual, Third Edition, Cold Spring Harbor Laboratory Press (2001).
[0039] When measuring the expression level of a target gene or a nucleic acid derived therefrom by sequencing, for example, analysis can be performed using a next-generation sequencer (e.g., Ion S5 / XL system, Life Technologies Japan, Inc.). RNA expression can be quantified based on the number of reads (read count) generated by sequencing.
[0040] The probes or primers used in the above measurements, i.e., primers for specifically recognizing and amplifying the target gene of the present invention or a nucleic acid derived therefrom, or probes for specifically detecting the RNA or a nucleic acid derived therefrom, fall into this category, and can be designed based on the nucleotide sequence constituting the target gene. Here, "specifically recognize" means that the detected substance or product can be determined to be the gene or a nucleic acid derived therefrom, such that, for example, in Northern blotting, substantially only the target gene of the present invention or a nucleic acid derived therefrom can be detected, or, for example, in RT-PCR, substantially only the nucleic acid is amplified. Specifically, DNA consisting of the base sequence constituting the target gene of the present invention or an oligonucleotide containing a certain number of nucleotides complementary to its complementary strand can be used. Here, "complementary strand" refers to one strand of a double-stranded DNA consisting of A:T (U in the case of RNA) and G:C base pairs, while the other strand is complementary to the other strand. Furthermore, "complementary" does not necessarily mean a perfectly complementary sequence over a certain number of consecutive nucleotides, but rather means that the base sequence has an identity of preferably 80% or more, more preferably 90% or more, and even more preferably 95% or more. The identity of the base sequence can be determined using an algorithm such as BLAST. When used as a primer, such an oligonucleotide may be capable of specific annealing and chain elongation, and typically has a chain length of, for example, 10 or more bases, preferably 15 or more bases, more preferably 20 or more bases, and for example, 100 or less bases, preferably 50 or less bases, more preferably 35 or less bases. When used as a probe, it is sufficient to be capable of specific hybridization, and an oligonucleotide having at least a partial or complete sequence of DNA (or its complementary strand) consisting of the base sequence constituting the target gene of the present invention, and having a chain length of, for example, 10 or more bases, preferably 15 or more bases, and for example, 100 or less bases, preferably 50 or less bases, more preferably 25 or less bases, is used. Here, "oligonucleotide" can be DNA or RNA, and can be either synthetic or natural. Furthermore, the probe used for hybridization is usually labeled.
[0041] Furthermore, when measuring the translation product (protein) of the TARC gene, which is the target of the present invention, molecules that interact with the protein, molecules that interact with RNA, or molecules that interact with DNA, protein chip analysis, immunoassays (e.g., ELISA, etc.), mass spectrometry (e.g., LC-MS / MS, MALDI-TOF / MS), one-hybrid method (PNAS 100, 12271-12276 (2003)), or two-hybrid method (Biol. Reprod. 58, 302-311 (1998)) can be used. The above methods can be used, and can be appropriately selected depending on the subject. For example, when a protein is used as the measurement target, the measurement is carried out by contacting an antibody against the expression product of the present invention with a biological sample, detecting the protein in the sample that binds to the antibody, and measuring its level. For example, in the Western blot method, the above-mentioned antibody is used as the primary antibody, and then an antibody that binds to the primary antibody and is labeled with a radioisotope, a fluorescent substance, an enzyme, or the like is used as the secondary antibody, and the primary antibody is labeled, and the signal derived from this label is measured using a radiation measuring instrument, a fluorescence detector, or the like. The antibody against the translation product may be a polyclonal antibody or a monoclonal antibody. These antibodies can be produced according to known methods. Specifically, polyclonal antibodies can be obtained according to standard methods by immunizing a non-human animal such as a rabbit with a protein expressed in E. coli or the like and purified according to standard methods, or by synthesizing a partial polypeptide of the protein according to standard methods, and then extracting the antibody from the serum of the immunized animal. On the other hand, monoclonal antibodies can be obtained from hybridoma cells prepared by immunizing a non-human animal such as a mouse with a protein expressed and purified in Escherichia coli or a partial polypeptide of the protein according to a conventional method, and fusing the resulting spleen cells with myeloma cells. Monoclonal antibodies can also be produced using phage display (Griffiths, AD; Duncan, AR, Current Opinion in Biotechnology, Volume 9, Number 1, February 1998, pp. 102-108(7)).
[0042] Thus, the expression level of the TARC gene or its expression product in SSL collected from a subject is measured, and infantile atopic dermatitis is detected based on the expression level. Specifically, the detection is carried out by comparing the measured expression level of the TARC gene or its expression product with a control level. When analyzing the expression levels of multiple target genes by sequencing, as described above, it is preferable to use as indicators the read count value, which is expression level data; the RPM value obtained by correcting the read count value for differences in the total number of reads between samples; the value obtained by converting the RPM value to a base 2 logarithm (Log2RPM value) or the base 2 logarithm obtained by adding an integer 1 (Log2(RPM+1) value); or the count value corrected using DESeq2 (Normalized count value) or the base 2 logarithm obtained by adding an integer 1 (Log2(count+1) value). Furthermore, values calculated using common quantitative values for RNA-seq, such as fragments per kilobase of exon per million reads mapped (FPKM), reads per kilobase of exon per million reads mapped (RPKM), or transcripts per million (TPM), may also be used. Signal values obtained by microarray analysis and their corrected values may also be used. Furthermore, when analyzing the expression level of only the target TARC gene by RT-PCR or the like, it is preferable to convert the expression level of the target gene to a relative expression level based on the expression level of a housekeeping gene (relative quantification) for analysis, or to quantify the absolute copy number using a plasmid containing the target gene region (absolute quantification) for analysis. Copy numbers obtained by digital PCR may also be used. Here, the "control level" refers to, for example, the expression level of the TARC gene or its expression product in healthy children. The expression level in healthy children may be a statistical value (e.g., average value) of the expression level of the TARC gene or its expression product measured from a population of healthy children. Depending on the purpose of detection, the expression level of the TARC gene or its expression product in children with mild or moderate atopic dermatitis may also be used as the "control level."
[0043] In addition, infant atopic dermatitis in the present invention can also be detected by detecting an increase / decrease in the expression level of the TARC gene or its expression product. In this case, the expression level of the TARC gene or its expression product in SSL derived from a subject is compared with a cutoff value (reference value) of the TARC gene or its expression product. The cutoff value can be determined by various statistical analysis methods, such as a value based on receiver operating characteristic curve (ROC) analysis (e.g., Youden's index, the distance from the upper left corner coordinates (0, 1) of the ROC curve, etc.). The ROC curve is created by plotting the probability of a positive result in a positive patient (true positive rate (TPF: True Position Fraction, sensitivity)) on the vertical axis and the value obtained by subtracting the probability of a negative result in a negative patient (specificity) from 1 (false positive rate (FPF: False Position Fraction)) on the horizontal axis, and varying the threshold for determining which test results indicate a finding, i.e., the cutoff point, as a parameter. The cutoff point to be used from the created ROC curve can be determined based on the severity of the disease, the purpose of the test, and various other conditions. Normally, if the cutoff point is set at a point with a low false positive rate, the number of negative patients who test positive will decrease, but conversely, many positive patients will be excluded, resulting in low sensitivity. Conversely, increasing sensitivity will increase the false positive rate among negative patients. Generally, to increase both sensitivity and specificity (to approach 1), the cutoff value is set to the value that gives the point closest to point (0,1) on the ROC curve, or the value (Youden index) at which "true positive (sensitivity)" - "false positive (1 - specificity)" is maximized.
[0044] The test kit for detecting infant atopic dermatitis of the present invention contains test reagents for measuring the expression level of the TARC gene or its expression product in SSL isolated from a patient. Specific examples include reagents for nucleic acid amplification or hybridization, including oligonucleotides (e.g., PCR primers) that specifically bind (hybridize) to the TARC gene or nucleic acids derived therefrom, and reagents for immunological measurements, including antibodies that recognize the expression product (protein) of the TARC gene. The oligonucleotides, antibodies, etc. included in the kit can be obtained by known methods, as described above. In addition to the above-mentioned antibodies and nucleic acids, the test kit may also include labeling reagents, buffer solutions, colorimetric substrates, secondary antibodies, blocking agents, equipment necessary for the test, control reagents used as positive and negative controls, tools for collecting SSLs (e.g., oil-removing films for collecting SSLs), reagents for storing the collected SSLs, storage containers, and reagents for extracting and purifying RNA from the collected SSLs.
[0045] Aspects and preferred embodiments of the present invention are set out below. <1> A method for detecting infant atopic dermatitis in a subject, comprising a step of measuring the expression level of the TARC gene or its expression product in lipids on the skin surface collected from the subject. <2> The expression level of a gene or its expression product is measured by measuring the expression amount of mRNA. <1> How to do it. <3> The measured expression level is compared with a reference value of the gene or its expression product to assess the presence or absence of infantile atopic dermatitis or the degree of its progression. <1> or <2> How to do it. <4> The progression of infantile atopic dermatitis is mild or moderate. <3> How to do it. <5> The degree of progression of infantile atopic dermatitis is the degree of progression (severity) based on the EASI score or IGA score. <3> or <4> How to do it. <6> The subjects are infants between 0 and 5 years old. <1> ~ <4> Either way. <7> The subject is an infant under the age of 2, <1> ~ <5> Either way. <8> Use of the TARC gene or its expression product derived from lipids on the skin surface collected from a subject as a marker for atopic dermatitis in infants and young children. <9> The TARC gene or its expression product is mRNA contained in the surface lipids of the skin collected from the subject. <8> Use of. <10> To evaluate the presence or absence of atopic dermatitis in infants and young children, or the degree of its progression; <8> or <9> Use of. <11> The progression of infantile atopic dermatitis is mild or moderate. <10> Use as described. <12> The degree of progression (severity) of infantile atopic dermatitis is based on the EASI score or IGA score. <10> or <11> Use as described. <13> The subjects are infants between 0 and 5 years old. <8> ~ <12> Use of either. <14> The subject is an infant under the age of 2, <8> ~ <13> Use of either. <15> An oligonucleotide that specifically hybridizes with the gene or a nucleic acid derived therefrom, or an antibody that recognizes the expression product of the gene, <1> ~ <7> A test kit for detecting atopic dermatitis in infants, which is used in any one of the methods above. [Example]
[0046] The present invention will be described in more detail below based on examples, but the present invention is not limited to these examples.
[0047] Example 1 Detection of the TARC gene in RNA extracted from SSL 1) SSL collection The subjects were 20 infants with healthy skin (HL) (6 months to 5 years old, both male and female) and 16 infants with atopic dermatitis (AD) (6 months to 5 years old, both male and female). The infants with atopic dermatitis were diagnosed by a dermatologist as having mild or moderate atopic dermatitis. The EASI score (Hanifin et al. Exp dermatol. 10, 2001) was used for diagnosis, and according to the literature, infants with a score greater than 0 and less than 6 were considered to have mild (mild) atopic dermatitis, and infants with a score greater than 6 and less than 23 were considered to have moderate (moderate) atopic dermatitis (Chopra et al. Br J Dermatol. 177, 2017). The results were as follows: There were 9 mild cases and 7 moderate cases. Among the subjects, 14 had HL and 10 had AD (6 mild cases and 4 moderate cases) under the age of 2. Sebum was collected from the entire face of each subject (including the rash area in the case of AD) using an oil blotting film (5 x 8 cm, made of polypropylene, 3M). The oil blotting film was then transferred to a vial and stored at -80°C for approximately one month until use in RNA extraction.
[0048] 2) RNA preparation and sequencing The oil blotting film (1) above was cut to an appropriate size, and RNA was extracted using QIAzol Lysis Reagent (Qiagen) according to the attached protocol. The extracted RNA was reverse-transcribed at 42°C for 90 minutes using the SuperScript VILO cDNA Synthesis kit (Life Technologies Japan, Inc.) to synthesize cDNA. The random primers included with the kit were used as primers for the reverse transcription reaction. A library containing DNA derived from the 20802 gene was prepared from the resulting cDNA by multiplex PCR. Multiplex PCR was performed using the Ion AmpliSeq Transcriptome Human Gene Expression Kit (Life Technologies Japan, Inc.) under the following conditions: 99°C, 2 minutes → (99°C, 15 seconds → 62°C, 16 minutes) × 20 cycles → 4°C hold. The resulting PCR products were purified using Ampure XP (Beckman Coulter, Inc.), followed by buffer reconstitution, primer digestion, adapter ligation, purification, and amplification to prepare a library. The prepared library was loaded onto an Ion 540 chip and sequenced using an Ion S5 / XL system (Life Technologies Japan, Inc.).
[0049] 3) Expression analysis of the TARC gene RNA expression data (read count values) extracted from SSLs of healthy, mildly affected, and moderately affected children measured in 2) above were obtained, and data normalization and expression variation analysis were performed using DESeq2. Genes with a p-value corrected by likelihood ratio test (FDR) of less than 0.05 in AD compared to healthy controls were selected. Expression of the TARC gene was found to be significantly higher in AD (FDR<0.05), demonstrating that TARC is useful as a detection marker for infantile atopic dermatitis in SSLs, just as it is in serum. Differences in expression levels were shown based on the logarithm of base 2 (Log2(Normalized count+1) value), obtained by adding an integer 1 to the normalized count value (Normalized count value). (Figure 1).
[0050] 4) Verification of discrimination accuracy Based on the RNA expression data (Log2 (Normalized count + 1) value) of TARC derived from SSL of healthy, mildly affected, and moderately affected children used in 3) above, ROC curves were calculated. A line was drawn, and the cutoff value was set as the value (Youden index) at which the ratio of "true positive (sensitivity)" to "false positive (1 - specificity)" was maximized. The cutoff values for distinguishing between healthy and mild to moderately ill children, between healthy and mildly ill children, and between mild and moderately ill children were set at 13.5, 12.5, and 13.8, respectively. As shown in Tables 1a to 1c below, the accuracy rates were 89%, 79%, and 87%, respectively, demonstrating that this method is capable of detecting with superior accuracy (sensitivity and specificity) compared to conventional methods.
[0051] [Table 1]
[0052] The results of a similar test conducted on infants under the age of two are shown in Tables 2a to 2c. When the cutoff values for distinguishing between healthy and mild to moderately ill children, between healthy and mildly ill children, and between mild and moderately ill children were set within the numerical ranges of 12.5-12.8, 12.5-12.8, and 13.6-13.8, respectively, accurate determinations were possible with accuracy rates of 75%, 70%, and 90%, as shown in Tables 2a to 2c below, demonstrating that this method is also useful for infants under the age of 2, which was more difficult to do with conventional methods.
[0053] [Table 2]
[0054] Below, as a reference example, we will show that the amount of TARC in serum and the expression level of TARC in SSL-derived RNA are not necessarily linked, using the case of an adult patient with atopic dermatitis as an example.
[0055] Reference example: Detection of TRAC in adult samples (SSL, serum) 1) SSL collection The subjects were 14 healthy adults (HL) (25-57 years old, male) and 29 adults with atopic dermatitis (AD) (23-56 years old, male). Subjects with atopic dermatitis were diagnosed by a dermatologist as having mild or moderate atopic dermatitis. Sebum was collected from each subject's entire face using oil-blotting film (5 x 8 cm, polypropylene, 3M). The oil-blotting film was then transferred to a vial and stored at -80°C for approximately one month before use in RNA extraction. 2) RNA preparation and sequencing The oil blotting film (1) above was cut to an appropriate size, and RNA was extracted using QIAzol Lysis Reagent (Qiagen) according to the attached protocol. The extracted RNA was reverse-transcribed at 42°C for 90 minutes using the SuperScript VILO cDNA Synthesis kit (Life Technologies Japan, Inc.) to synthesize cDNA. The random primers included with the kit were used as primers for the reverse transcription reaction. A library containing DNA derived from the 20802 gene was prepared from the resulting cDNA by multiplex PCR. Multiplex PCR was performed using the Ion AmpliSeq Transcriptome Human Gene Expression Kit (Life Technologies Japan, Inc.) under the following conditions: 99°C, 2 minutes → (99°C, 15 seconds → 62°C, 16 minutes) × 20 cycles → 4°C hold. The resulting PCR products were purified using Ampure XP (Beckman Coulter, Inc.), followed by buffer reconstitution, primer digestion, adapter ligation, purification, and amplification to prepare a library. The prepared library was loaded onto an Ion 540 chip and sequenced using an Ion S5 / XL system (Life Technologies Japan, Inc.). 3) Expression analysis of the TARC gene The expression level data (read count values) of RNA extracted from the SSL of healthy and AD patients measured in 2) above were obtained, and data normalization and expression variation analysis were performed using DESeq2. Genes with a p-value corrected by likelihood ratio test (FDR) of less than 0.05 in AD compared to healthy subjects were selected. As a result, the TARC gene was not selected as a gene with expression variations, and TARC did not show a significant difference in expression level in RNA derived from the SSL of adult AD patients compared to healthy subjects. The logarithm of base 2 (Log2(Normalized c The difference in expression levels based on the (count + 1) value is shown (Figure 2). 4) Blood collection For the subjects (14 with HL and 29 with AD) whose SSL samples were collected in 1), doctors or nurses collected blood into blood collection tubes (Venoject® II-P, TERUMO) according to standard procedures. The blood collection tubes were centrifuged at room temperature (3000 rpm, 15 minutes) and refrigerated until analysis. 5) Analysis of serum TARC levels The serum TARC levels were analyzed by an external organization (LSI Medience Corporation) using CLEIA (chemiluminescent enzyme immunoassay). When the serum TARC protein levels were compared between healthy individuals and AD patients, the serum TARC levels were significantly higher in AD patients (unpaired t-test, p=0.014) (Figure 3).
Claims
1. A method for measuring the expression level of mRNA of the TARC gene in a subject, the method comprising the step of measuring the expression level of mRNA of the TARC gene in lipids on the skin surface collected from the entire face of the subject using a sheet-shaped lipid-absorbent material on the skin surface, in order to detect the degree of progression of infant atopic dermatitis in the subject, the degree of progression of the infant atopic dermatitis is normal, mild or moderate, The detection includes a step of comparing the measured value of the expression level with a reference value that distinguishes between healthy and mild, and between mild and moderate, in the expression level of mRNA of the gene, and indicating that a higher degree of progression is more severe if the measured value is greater than the reference value. method.
2. 2. The method according to claim 1, wherein the degree of progression of infantile atopic dermatitis is mild or moderate.
3. The method according to claim 1 or 2, wherein the subject is an infant aged 0 to 5 years.
Citation Information
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