This study was performed in line with the principles of the Declaration of Helsinki. Approval was granted by the Ethics Committee of Affiliated Hospital of Shandong Second Medical University, School of Clinical Medicine, Shandong Second Medical University (approval number: wyfy-2023-ky-124). Informed consent was obtained from all subjects involved in the study. The reagents and the equipment used are listed in the Table of Materials.
1. Experimental subjects
Sample size calculation was performed using G*Power 3.1 software based on an independent sample t-test. A medium effect size (Cohen’s d = 0.5, widely used in clinical observational studies), two-tailed test, α = 0.05, and power (1 − β) = 0.95 were set. The calculation indicated that at least 105 participants were required per group. Finally, 182 breast cancer patients and 147 patients with benign breast lesions were enrolled, and the actual sample size of both groups far exceeded the minimum required sample size, ensuring sufficient statistical power to support the study conclusions and controlling the risk of type II error within an acceptable range. All participants were strictly and consecutively enrolled according to unified inclusion and exclusion criteria.
From 2023 to 2024, all patients were enrolled at the Affiliated Hospital of Shandong Second Medical University, School of Clinical Medicine, Shandong Second Medical University. Benign lesions: Non-malignant lesions were confirmed by pathology. Breast cancer: malignant tumors were confirmed by pathology. Venous blood samples were collected from all participants after overnight fasting. The venous blood samples were anticoagulated and centrifuged to separate the plasma, complying strictly with the standard procedures, and then transferred to −80 °C for long-term storage, which was subsequently used for miRNA extraction. All plasma samples were strictly limited to no more than two freeze-thaw cycles before RNA extraction to prevent miRNA degradation. All patients were fully informed about the study protocol and voluntarily provided written informed consent before enrollment.
Inclusion criteria for breast cancer patients: (1) Patients with pathologically confirmed primary breast cancer. (2) No surgical treatment before enrollment. (3) Not received radiotherapy or chemotherapy treatment before sample collection.
Inclusion criteria for benign breast disease patients: (1) Pathologically confirmed benign breast lesions. (2) Without any other systemic malignant tumors or precancerous lesions. (3) Non-pregnant and non-lactating. (4) No severe acute infection or chronic inflammatory disease.
Exclusion criteria for breast cancer and benign breast lesion patients: (1) Severe breast infection or acute critical illness. (2) Severe liver or kidney dysfunction, or autoimmune disease. (3) Patients who received hormone therapy within 6 months.
2. Doppler ultrasound examination
Patient's bilateral breasts were thoroughly examined in four quadrants using Doppler ultrasound. Two-dimensional ultrasound scanning was used to record the lesion features, including boundaries, shape, internal echo, posterior echo waves, and aspect ratio of the lesion. Color Doppler flow imaging was applied to assess the blood flow parameters of the lesion, including resistance index (RI), pulsatility index (PI), and maximum blood flow velocity (Vmax). Blood flow signals were graded according to a previously reported classification system18: Grade 0: No blood flow signal; Grade I: minimal blood flow signal; Grade II: The length of the blood flow signal exceeds half of the lesion diameter; Grade III: Abundant blood flow signal.
3. Positive definition for ultrasound diagnosis of breast cancer
These included (1) Ambiguous boundaries; (2) Irregular shape; (3) Uneven internal echo; (4) Weakened rear echo; (5) Aspect ratio >1; (6) RI > 0.70; (7) PI > 1.50; (8) Maximum blood flow rate (Vmax)> 18.00 cm/s; (9) Blood flow signal ≥ grade II. Any lesion that meets any of the above suspicious criteria is classified as ultrasound positive, while those without suspicious features are classified as ultrasound negative.
4. Real-time fluorescence quantitative polymerase chain reaction (RT-qPCR)
Plasma miRNAs were extracted using a specialized miRNA extraction kit. The successfully extracted RNA samples were used to synthesize cDNA using specialized miRNA reverse transcription kits. Reverse transcription reaction conditions for miR-362-3p: The total volume of this reaction was 20 µL. The PCR reaction procedure was as follows: (1) The mixture was incubated at 37 °C for 15 min, (2) The reverse transcription reaction was carried out for 50 min at 42 °C, (3) The enzyme was inactivated for 5 min at 95 °C. The product was stored at 4 °C. The qPCR reaction conditions: The total volume of the reaction system was 20 µL.The amplification conditions were performed as follows: (1) The cDNA was pre-denatured, and the DNA polymerase was activated at 95 °C for 2 min. (2) The DNA strands anneal and extend for 30 s at 60 °C. The above two steps were carried out for a total of 40 cycles. The gene relative expression was calculated by the formula 2-(ΔΔCt). The miR-362-3p relative expression was calibrated by U6. To justify the use of U6 as an endogenous control, the stability of U6 was evaluated using the BestKeeper algorithm in the plasma cohort. The coefficient of variation (CV) of U6 Ct values across all samples was less than 2%, indicating high expression stability. Therefore, U6 was validated and selected as the reference gene for normalization of miR‑362‑3p expression in the present study. The downstream sequence of the primers was provided by the kit. The primer sequences were as follows:
miR-362-3p: GCCGAGAACACACCTATTCA.
U6: CTCGCTTCGGCAGCACATATACT.
5. Receiver Operating Characteristic (ROC) curve
The Youden index was used to determine the optimal cut-off value for miR-362-3p in diagnosing breast cancer by calculating the sensitivity and specificity values of the ROC curve. The combined diagnostic model was constructed using binary logistic regression in SPSS, with miR-362-3p, RI, and PI entered as independent variables. Variables were included by the Enter method to generate the predicted probability value of the combined diagnosis for each subject. The formula for the prediction probability (PRE):
. ROC curves were plotted based on the PRE. The Delong test was used to compare the differences in Area Under Curve (AUC) values between different ROC curves.
6. Definition of outcome parameters
The primary outcome parameter was the overall diagnostic efficacy of the combined model of plasma miR-362-3p and Doppler ultrasound for breast cancer, with pathological diagnosis as the gold standard. The secondary outcome parameters included the diagnostic performance of Doppler ultrasound alone and plasma miR-362-3p alone.
7. Data statistics
The expression levels of miR-362-3p and the ROC curves of the two groups of patients were analyzed using statistical and graphing software. The t-test was used to compare the differences in continuous variables between the two groups. The chi-square test and the fourfold table method were analyzed using SPSS 26.0. The chi-square test was used to evaluate the statistical differences of categorical variables; the two-index combination (miR-362-3p + doppler ultrasound) was regarded as the primary analysis, representing a routine qualitative diagnostic conclusion in clinical practice; if there were any suspicious features derived from the Breast Imaging Reporting and Data System (BI-RADS) classification, the lesion was defined as positive; the fourfold table method was used to calculate the specificity, positive predictive value, negative predictive value, and accuracy of the combined diagnosis of Doppler ultrasound and miR-362-3p. The diagnostic results between Doppler ultrasound and miR-362-3p included true positive (a), false positive (b), false negative (c), and true negative (d). Calculation formula: Sensitivity = a / (a + c); Specificity = d / (d + b); Positive Predictive Value = a / (a + b); Negative Predictive Value = d / (d + c); Accuracy = (a + d) / (a + b + c + d). The three diagnostic methods (miR-362-3p, ultrasound, and combined diagnosis) were performed using the Pearson χ2 test for R×C contingency tables. P < 0.05 was considered statistically significant.